Record-high Anomalous Ettingshausen effect in a micron-sized magnetic Weyl semimetal on-chip cooler
Abstract: Solid-state cooling devices offer compact, quiet, reliable and environmentally friendly solutions that currently rely primarily on the thermoelectric (TE) effect. Despite more than two centuries of research, classical thermoelectric coolers suffer from low efficiency which hampers wider application. In this study, the less researched Anomalous Ettingshausen effect (AEE), a transverse thermoelectric phenomenon, is presented as a new approach for on-chip cooling. This effect can be boosted in materials with non-trivial band topologies as demonstrated in the Heusler alloy . Enabled by the high quality of our material, in situ scanning thermal microscopy experiments reveal a record-breaking anomalous Ettingshausen coefficient of ~mV in m-sized on-chip cooling devices at room temperature. A significant 44\% of the effect is contributed by the intrinsic topological properties, in particular the Berry curvature of , emphasising the unique potential of magnetic Weyl semimetals for high-performance spot cooling in nanostructures.
- Reichlova, H., Schlitz, R., Beckert, S., Swekis, P., Markou, A., Chen, Y.-C., Kriegner, D., Fabretti, S., Hyeon Park, G., Niemann, A., et al.: Large anomalous Nernst effect in thin films of the Weyl semimetal Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa. Applied Physics Letters 113(21), 212405 (2018) Yang et al. [2020] Yang, H., You, W., Wang, J., Huang, J., Xi, C., Xu, X., Cao, C., Tian, M., Xu, Z.-A., Dai, J., Li, Y.: Giant anomalous Nernst effect in the magnetic Weyl semimetal Co3Sn2S2subscriptCo3subscriptSn2subscriptS2{\mathrm{Co}}_{3}{\mathrm{Sn}}_{2}{\mathrm{S}}_{2}roman_Co start_POSTSUBSCRIPT 3 end_POSTSUBSCRIPT roman_Sn start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_S start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT. Phys. Rev. Mater. 4, 024202 (2020) Bridgman [1924] Bridgman, P.: The connections between the four transverse galvanomagnetic and thermomagnetic phenomena. Physical Review 24(6), 644 (1924) Mizuno et al. [2022] Mizuno, H., Modak, R., Hirai, T., Takahagi, A., Sakuraba, Y., Iguchi, R., Uchida, K.-i.: Deposition temperature dependence of thermo-spin and magneto-thermoelectric conversion in Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa films on Y33{}_{3}start_FLOATSUBSCRIPT 3 end_FLOATSUBSCRIPTFe55{}_{5}start_FLOATSUBSCRIPT 5 end_FLOATSUBSCRIPTO1212{}_{12}start_FLOATSUBSCRIPT 12 end_FLOATSUBSCRIPT and Gd33{}_{3}start_FLOATSUBSCRIPT 3 end_FLOATSUBSCRIPTGa55{}_{5}start_FLOATSUBSCRIPT 5 end_FLOATSUBSCRIPTO1212{}_{12}start_FLOATSUBSCRIPT 12 end_FLOATSUBSCRIPT. Applied Physics Letters 120(20), 202401 (2022) Zhang et al. [2021] Zhang, Y., Yin, Y., Dubuis, G., Butler, T., Medhekar, N.V., Granville, S.: Berry curvature origin of the thickness-dependent anomalous Hall effect in a ferromagnetic Weyl semimetal. npj Quantum Materials 6(1), 17 (2021) Miura et al. [2019] Miura, A., Sepehri-Amin, H., Masuda, K., Tsuchiura, H., Miura, Y., Iguchi, R., Sakuraba, Y., Shiomi, J., Hono, K., Uchida, K.-i.: Observation of anomalous Ettingshausen effect and large transverse thermoelectric conductivity in permanent magnets. Applied Physics Letters 115(22), 222403 (2019) Nagasawa et al. [2022] Nagasawa, R., Oyanagi, K., Hirai, T., Modak, R., Kobayashi, S., Uchida, K.-i.: Anomalous Ettingshausen effect in iron–carbon alloys. Applied Physics Letters 121(6), 062401 (2022) Miura et al. [2020] Miura, A., Iguchi, R., Seki, T., Takanashi, K., Uchida, K.-i.: Spin-mediated charge-to-heat current conversion phenomena in ferromagnetic binary alloys. Physical Review Materials 4(3), 034409 (2020) Uchida et al. [2018] Uchida, K.-i., Daimon, S., Iguchi, R., Saitoh, E.: Observation of anisotropic magneto-Peltier effect in nickel. Nature 558(7708), 95–99 (2018) Menges et al. [2016] Menges, F., Mensch, P., Schmid, H., Riel, H., Stemmer, A., Gotsmann, B.: Temperature mapping of operating nanoscale devices by scanning probe thermometry. Nature Communications 7(1), 10874 (2016) Harzheim et al. [2018] Harzheim, A., Spiece, J., Evangeli, C., McCann, E., Falko, V., Sheng, Y., Warner, J.H., Briggs, G.A.D., Mol, J.A., Gehring, P., et al.: Geometrically enhanced thermoelectric effects in graphene nanoconstrictions. Nano Letters 18(12), 7719–7725 (2018) Spiece et al. [2018] Spiece, J., Evangeli, C., Lulla, K., Robson, A., Robinson, B., Kolosov, O.: Improving accuracy of nanothermal measurements via spatially distributed scanning thermal microscope probes. Journal of Applied Physics 124(1), 015101 (2018) Das et al. [2019] Das, R., Iguchi, R., Uchida, K.-i.: Systematic investigation of anisotropic magneto–peltier effect and anomalous ettingshausen effect in Ni thin films. Physical Review Applied 11(3), 034022 (2019) Miura et al. [2020] Miura, A., Masuda, K., Hirai, T., Iguchi, R., Seki, T., Miura, Y., Tsuchiura, H., Takanashi, K., Uchida, K.-i.: High-temperature dependence of anomalous Ettingshausen effect in SmCo55{}_{5}start_FLOATSUBSCRIPT 5 end_FLOATSUBSCRIPT-type permanent magnets. Applied Physics Letters 117(8), 082408 (2020) Hu et al. [2022] Hu, J., Zhang, Y., Huo, X., Li, N., Liu, S., Yu, D., Ansermet, J.-P., Granville, S., Yu, H.: Large Anomalous Nernst Angle in Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa Thin Film. IEEE Magnetics Letters 13, 1–5 (2022) Seki et al. [2018] Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Yang, H., You, W., Wang, J., Huang, J., Xi, C., Xu, X., Cao, C., Tian, M., Xu, Z.-A., Dai, J., Li, Y.: Giant anomalous Nernst effect in the magnetic Weyl semimetal Co3Sn2S2subscriptCo3subscriptSn2subscriptS2{\mathrm{Co}}_{3}{\mathrm{Sn}}_{2}{\mathrm{S}}_{2}roman_Co start_POSTSUBSCRIPT 3 end_POSTSUBSCRIPT roman_Sn start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_S start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT. Phys. Rev. Mater. 4, 024202 (2020) Bridgman [1924] Bridgman, P.: The connections between the four transverse galvanomagnetic and thermomagnetic phenomena. Physical Review 24(6), 644 (1924) Mizuno et al. [2022] Mizuno, H., Modak, R., Hirai, T., Takahagi, A., Sakuraba, Y., Iguchi, R., Uchida, K.-i.: Deposition temperature dependence of thermo-spin and magneto-thermoelectric conversion in Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa films on Y33{}_{3}start_FLOATSUBSCRIPT 3 end_FLOATSUBSCRIPTFe55{}_{5}start_FLOATSUBSCRIPT 5 end_FLOATSUBSCRIPTO1212{}_{12}start_FLOATSUBSCRIPT 12 end_FLOATSUBSCRIPT and Gd33{}_{3}start_FLOATSUBSCRIPT 3 end_FLOATSUBSCRIPTGa55{}_{5}start_FLOATSUBSCRIPT 5 end_FLOATSUBSCRIPTO1212{}_{12}start_FLOATSUBSCRIPT 12 end_FLOATSUBSCRIPT. Applied Physics Letters 120(20), 202401 (2022) Zhang et al. [2021] Zhang, Y., Yin, Y., Dubuis, G., Butler, T., Medhekar, N.V., Granville, S.: Berry curvature origin of the thickness-dependent anomalous Hall effect in a ferromagnetic Weyl semimetal. npj Quantum Materials 6(1), 17 (2021) Miura et al. [2019] Miura, A., Sepehri-Amin, H., Masuda, K., Tsuchiura, H., Miura, Y., Iguchi, R., Sakuraba, Y., Shiomi, J., Hono, K., Uchida, K.-i.: Observation of anomalous Ettingshausen effect and large transverse thermoelectric conductivity in permanent magnets. Applied Physics Letters 115(22), 222403 (2019) Nagasawa et al. [2022] Nagasawa, R., Oyanagi, K., Hirai, T., Modak, R., Kobayashi, S., Uchida, K.-i.: Anomalous Ettingshausen effect in iron–carbon alloys. Applied Physics Letters 121(6), 062401 (2022) Miura et al. [2020] Miura, A., Iguchi, R., Seki, T., Takanashi, K., Uchida, K.-i.: Spin-mediated charge-to-heat current conversion phenomena in ferromagnetic binary alloys. Physical Review Materials 4(3), 034409 (2020) Uchida et al. [2018] Uchida, K.-i., Daimon, S., Iguchi, R., Saitoh, E.: Observation of anisotropic magneto-Peltier effect in nickel. Nature 558(7708), 95–99 (2018) Menges et al. [2016] Menges, F., Mensch, P., Schmid, H., Riel, H., Stemmer, A., Gotsmann, B.: Temperature mapping of operating nanoscale devices by scanning probe thermometry. Nature Communications 7(1), 10874 (2016) Harzheim et al. [2018] Harzheim, A., Spiece, J., Evangeli, C., McCann, E., Falko, V., Sheng, Y., Warner, J.H., Briggs, G.A.D., Mol, J.A., Gehring, P., et al.: Geometrically enhanced thermoelectric effects in graphene nanoconstrictions. Nano Letters 18(12), 7719–7725 (2018) Spiece et al. [2018] Spiece, J., Evangeli, C., Lulla, K., Robson, A., Robinson, B., Kolosov, O.: Improving accuracy of nanothermal measurements via spatially distributed scanning thermal microscope probes. Journal of Applied Physics 124(1), 015101 (2018) Das et al. [2019] Das, R., Iguchi, R., Uchida, K.-i.: Systematic investigation of anisotropic magneto–peltier effect and anomalous ettingshausen effect in Ni thin films. Physical Review Applied 11(3), 034022 (2019) Miura et al. [2020] Miura, A., Masuda, K., Hirai, T., Iguchi, R., Seki, T., Miura, Y., Tsuchiura, H., Takanashi, K., Uchida, K.-i.: High-temperature dependence of anomalous Ettingshausen effect in SmCo55{}_{5}start_FLOATSUBSCRIPT 5 end_FLOATSUBSCRIPT-type permanent magnets. Applied Physics Letters 117(8), 082408 (2020) Hu et al. [2022] Hu, J., Zhang, Y., Huo, X., Li, N., Liu, S., Yu, D., Ansermet, J.-P., Granville, S., Yu, H.: Large Anomalous Nernst Angle in Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa Thin Film. IEEE Magnetics Letters 13, 1–5 (2022) Seki et al. [2018] Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Bridgman, P.: The connections between the four transverse galvanomagnetic and thermomagnetic phenomena. Physical Review 24(6), 644 (1924) Mizuno et al. [2022] Mizuno, H., Modak, R., Hirai, T., Takahagi, A., Sakuraba, Y., Iguchi, R., Uchida, K.-i.: Deposition temperature dependence of thermo-spin and magneto-thermoelectric conversion in Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa films on Y33{}_{3}start_FLOATSUBSCRIPT 3 end_FLOATSUBSCRIPTFe55{}_{5}start_FLOATSUBSCRIPT 5 end_FLOATSUBSCRIPTO1212{}_{12}start_FLOATSUBSCRIPT 12 end_FLOATSUBSCRIPT and Gd33{}_{3}start_FLOATSUBSCRIPT 3 end_FLOATSUBSCRIPTGa55{}_{5}start_FLOATSUBSCRIPT 5 end_FLOATSUBSCRIPTO1212{}_{12}start_FLOATSUBSCRIPT 12 end_FLOATSUBSCRIPT. Applied Physics Letters 120(20), 202401 (2022) Zhang et al. [2021] Zhang, Y., Yin, Y., Dubuis, G., Butler, T., Medhekar, N.V., Granville, S.: Berry curvature origin of the thickness-dependent anomalous Hall effect in a ferromagnetic Weyl semimetal. npj Quantum Materials 6(1), 17 (2021) Miura et al. [2019] Miura, A., Sepehri-Amin, H., Masuda, K., Tsuchiura, H., Miura, Y., Iguchi, R., Sakuraba, Y., Shiomi, J., Hono, K., Uchida, K.-i.: Observation of anomalous Ettingshausen effect and large transverse thermoelectric conductivity in permanent magnets. Applied Physics Letters 115(22), 222403 (2019) Nagasawa et al. [2022] Nagasawa, R., Oyanagi, K., Hirai, T., Modak, R., Kobayashi, S., Uchida, K.-i.: Anomalous Ettingshausen effect in iron–carbon alloys. Applied Physics Letters 121(6), 062401 (2022) Miura et al. [2020] Miura, A., Iguchi, R., Seki, T., Takanashi, K., Uchida, K.-i.: Spin-mediated charge-to-heat current conversion phenomena in ferromagnetic binary alloys. Physical Review Materials 4(3), 034409 (2020) Uchida et al. [2018] Uchida, K.-i., Daimon, S., Iguchi, R., Saitoh, E.: Observation of anisotropic magneto-Peltier effect in nickel. Nature 558(7708), 95–99 (2018) Menges et al. [2016] Menges, F., Mensch, P., Schmid, H., Riel, H., Stemmer, A., Gotsmann, B.: Temperature mapping of operating nanoscale devices by scanning probe thermometry. Nature Communications 7(1), 10874 (2016) Harzheim et al. [2018] Harzheim, A., Spiece, J., Evangeli, C., McCann, E., Falko, V., Sheng, Y., Warner, J.H., Briggs, G.A.D., Mol, J.A., Gehring, P., et al.: Geometrically enhanced thermoelectric effects in graphene nanoconstrictions. Nano Letters 18(12), 7719–7725 (2018) Spiece et al. [2018] Spiece, J., Evangeli, C., Lulla, K., Robson, A., Robinson, B., Kolosov, O.: Improving accuracy of nanothermal measurements via spatially distributed scanning thermal microscope probes. Journal of Applied Physics 124(1), 015101 (2018) Das et al. [2019] Das, R., Iguchi, R., Uchida, K.-i.: Systematic investigation of anisotropic magneto–peltier effect and anomalous ettingshausen effect in Ni thin films. Physical Review Applied 11(3), 034022 (2019) Miura et al. [2020] Miura, A., Masuda, K., Hirai, T., Iguchi, R., Seki, T., Miura, Y., Tsuchiura, H., Takanashi, K., Uchida, K.-i.: High-temperature dependence of anomalous Ettingshausen effect in SmCo55{}_{5}start_FLOATSUBSCRIPT 5 end_FLOATSUBSCRIPT-type permanent magnets. Applied Physics Letters 117(8), 082408 (2020) Hu et al. [2022] Hu, J., Zhang, Y., Huo, X., Li, N., Liu, S., Yu, D., Ansermet, J.-P., Granville, S., Yu, H.: Large Anomalous Nernst Angle in Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa Thin Film. IEEE Magnetics Letters 13, 1–5 (2022) Seki et al. [2018] Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Mizuno, H., Modak, R., Hirai, T., Takahagi, A., Sakuraba, Y., Iguchi, R., Uchida, K.-i.: Deposition temperature dependence of thermo-spin and magneto-thermoelectric conversion in Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa films on Y33{}_{3}start_FLOATSUBSCRIPT 3 end_FLOATSUBSCRIPTFe55{}_{5}start_FLOATSUBSCRIPT 5 end_FLOATSUBSCRIPTO1212{}_{12}start_FLOATSUBSCRIPT 12 end_FLOATSUBSCRIPT and Gd33{}_{3}start_FLOATSUBSCRIPT 3 end_FLOATSUBSCRIPTGa55{}_{5}start_FLOATSUBSCRIPT 5 end_FLOATSUBSCRIPTO1212{}_{12}start_FLOATSUBSCRIPT 12 end_FLOATSUBSCRIPT. Applied Physics Letters 120(20), 202401 (2022) Zhang et al. [2021] Zhang, Y., Yin, Y., Dubuis, G., Butler, T., Medhekar, N.V., Granville, S.: Berry curvature origin of the thickness-dependent anomalous Hall effect in a ferromagnetic Weyl semimetal. npj Quantum Materials 6(1), 17 (2021) Miura et al. [2019] Miura, A., Sepehri-Amin, H., Masuda, K., Tsuchiura, H., Miura, Y., Iguchi, R., Sakuraba, Y., Shiomi, J., Hono, K., Uchida, K.-i.: Observation of anomalous Ettingshausen effect and large transverse thermoelectric conductivity in permanent magnets. Applied Physics Letters 115(22), 222403 (2019) Nagasawa et al. [2022] Nagasawa, R., Oyanagi, K., Hirai, T., Modak, R., Kobayashi, S., Uchida, K.-i.: Anomalous Ettingshausen effect in iron–carbon alloys. Applied Physics Letters 121(6), 062401 (2022) Miura et al. [2020] Miura, A., Iguchi, R., Seki, T., Takanashi, K., Uchida, K.-i.: Spin-mediated charge-to-heat current conversion phenomena in ferromagnetic binary alloys. Physical Review Materials 4(3), 034409 (2020) Uchida et al. [2018] Uchida, K.-i., Daimon, S., Iguchi, R., Saitoh, E.: Observation of anisotropic magneto-Peltier effect in nickel. Nature 558(7708), 95–99 (2018) Menges et al. [2016] Menges, F., Mensch, P., Schmid, H., Riel, H., Stemmer, A., Gotsmann, B.: Temperature mapping of operating nanoscale devices by scanning probe thermometry. Nature Communications 7(1), 10874 (2016) Harzheim et al. [2018] Harzheim, A., Spiece, J., Evangeli, C., McCann, E., Falko, V., Sheng, Y., Warner, J.H., Briggs, G.A.D., Mol, J.A., Gehring, P., et al.: Geometrically enhanced thermoelectric effects in graphene nanoconstrictions. Nano Letters 18(12), 7719–7725 (2018) Spiece et al. [2018] Spiece, J., Evangeli, C., Lulla, K., Robson, A., Robinson, B., Kolosov, O.: Improving accuracy of nanothermal measurements via spatially distributed scanning thermal microscope probes. Journal of Applied Physics 124(1), 015101 (2018) Das et al. [2019] Das, R., Iguchi, R., Uchida, K.-i.: Systematic investigation of anisotropic magneto–peltier effect and anomalous ettingshausen effect in Ni thin films. Physical Review Applied 11(3), 034022 (2019) Miura et al. [2020] Miura, A., Masuda, K., Hirai, T., Iguchi, R., Seki, T., Miura, Y., Tsuchiura, H., Takanashi, K., Uchida, K.-i.: High-temperature dependence of anomalous Ettingshausen effect in SmCo55{}_{5}start_FLOATSUBSCRIPT 5 end_FLOATSUBSCRIPT-type permanent magnets. Applied Physics Letters 117(8), 082408 (2020) Hu et al. [2022] Hu, J., Zhang, Y., Huo, X., Li, N., Liu, S., Yu, D., Ansermet, J.-P., Granville, S., Yu, H.: Large Anomalous Nernst Angle in Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa Thin Film. IEEE Magnetics Letters 13, 1–5 (2022) Seki et al. [2018] Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Zhang, Y., Yin, Y., Dubuis, G., Butler, T., Medhekar, N.V., Granville, S.: Berry curvature origin of the thickness-dependent anomalous Hall effect in a ferromagnetic Weyl semimetal. npj Quantum Materials 6(1), 17 (2021) Miura et al. [2019] Miura, A., Sepehri-Amin, H., Masuda, K., Tsuchiura, H., Miura, Y., Iguchi, R., Sakuraba, Y., Shiomi, J., Hono, K., Uchida, K.-i.: Observation of anomalous Ettingshausen effect and large transverse thermoelectric conductivity in permanent magnets. Applied Physics Letters 115(22), 222403 (2019) Nagasawa et al. [2022] Nagasawa, R., Oyanagi, K., Hirai, T., Modak, R., Kobayashi, S., Uchida, K.-i.: Anomalous Ettingshausen effect in iron–carbon alloys. Applied Physics Letters 121(6), 062401 (2022) Miura et al. [2020] Miura, A., Iguchi, R., Seki, T., Takanashi, K., Uchida, K.-i.: Spin-mediated charge-to-heat current conversion phenomena in ferromagnetic binary alloys. Physical Review Materials 4(3), 034409 (2020) Uchida et al. [2018] Uchida, K.-i., Daimon, S., Iguchi, R., Saitoh, E.: Observation of anisotropic magneto-Peltier effect in nickel. Nature 558(7708), 95–99 (2018) Menges et al. [2016] Menges, F., Mensch, P., Schmid, H., Riel, H., Stemmer, A., Gotsmann, B.: Temperature mapping of operating nanoscale devices by scanning probe thermometry. Nature Communications 7(1), 10874 (2016) Harzheim et al. [2018] Harzheim, A., Spiece, J., Evangeli, C., McCann, E., Falko, V., Sheng, Y., Warner, J.H., Briggs, G.A.D., Mol, J.A., Gehring, P., et al.: Geometrically enhanced thermoelectric effects in graphene nanoconstrictions. Nano Letters 18(12), 7719–7725 (2018) Spiece et al. [2018] Spiece, J., Evangeli, C., Lulla, K., Robson, A., Robinson, B., Kolosov, O.: Improving accuracy of nanothermal measurements via spatially distributed scanning thermal microscope probes. Journal of Applied Physics 124(1), 015101 (2018) Das et al. [2019] Das, R., Iguchi, R., Uchida, K.-i.: Systematic investigation of anisotropic magneto–peltier effect and anomalous ettingshausen effect in Ni thin films. Physical Review Applied 11(3), 034022 (2019) Miura et al. [2020] Miura, A., Masuda, K., Hirai, T., Iguchi, R., Seki, T., Miura, Y., Tsuchiura, H., Takanashi, K., Uchida, K.-i.: High-temperature dependence of anomalous Ettingshausen effect in SmCo55{}_{5}start_FLOATSUBSCRIPT 5 end_FLOATSUBSCRIPT-type permanent magnets. Applied Physics Letters 117(8), 082408 (2020) Hu et al. [2022] Hu, J., Zhang, Y., Huo, X., Li, N., Liu, S., Yu, D., Ansermet, J.-P., Granville, S., Yu, H.: Large Anomalous Nernst Angle in Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa Thin Film. IEEE Magnetics Letters 13, 1–5 (2022) Seki et al. [2018] Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Miura, A., Sepehri-Amin, H., Masuda, K., Tsuchiura, H., Miura, Y., Iguchi, R., Sakuraba, Y., Shiomi, J., Hono, K., Uchida, K.-i.: Observation of anomalous Ettingshausen effect and large transverse thermoelectric conductivity in permanent magnets. Applied Physics Letters 115(22), 222403 (2019) Nagasawa et al. [2022] Nagasawa, R., Oyanagi, K., Hirai, T., Modak, R., Kobayashi, S., Uchida, K.-i.: Anomalous Ettingshausen effect in iron–carbon alloys. Applied Physics Letters 121(6), 062401 (2022) Miura et al. [2020] Miura, A., Iguchi, R., Seki, T., Takanashi, K., Uchida, K.-i.: Spin-mediated charge-to-heat current conversion phenomena in ferromagnetic binary alloys. Physical Review Materials 4(3), 034409 (2020) Uchida et al. [2018] Uchida, K.-i., Daimon, S., Iguchi, R., Saitoh, E.: Observation of anisotropic magneto-Peltier effect in nickel. Nature 558(7708), 95–99 (2018) Menges et al. [2016] Menges, F., Mensch, P., Schmid, H., Riel, H., Stemmer, A., Gotsmann, B.: Temperature mapping of operating nanoscale devices by scanning probe thermometry. Nature Communications 7(1), 10874 (2016) Harzheim et al. [2018] Harzheim, A., Spiece, J., Evangeli, C., McCann, E., Falko, V., Sheng, Y., Warner, J.H., Briggs, G.A.D., Mol, J.A., Gehring, P., et al.: Geometrically enhanced thermoelectric effects in graphene nanoconstrictions. Nano Letters 18(12), 7719–7725 (2018) Spiece et al. [2018] Spiece, J., Evangeli, C., Lulla, K., Robson, A., Robinson, B., Kolosov, O.: Improving accuracy of nanothermal measurements via spatially distributed scanning thermal microscope probes. Journal of Applied Physics 124(1), 015101 (2018) Das et al. [2019] Das, R., Iguchi, R., Uchida, K.-i.: Systematic investigation of anisotropic magneto–peltier effect and anomalous ettingshausen effect in Ni thin films. Physical Review Applied 11(3), 034022 (2019) Miura et al. [2020] Miura, A., Masuda, K., Hirai, T., Iguchi, R., Seki, T., Miura, Y., Tsuchiura, H., Takanashi, K., Uchida, K.-i.: High-temperature dependence of anomalous Ettingshausen effect in SmCo55{}_{5}start_FLOATSUBSCRIPT 5 end_FLOATSUBSCRIPT-type permanent magnets. Applied Physics Letters 117(8), 082408 (2020) Hu et al. [2022] Hu, J., Zhang, Y., Huo, X., Li, N., Liu, S., Yu, D., Ansermet, J.-P., Granville, S., Yu, H.: Large Anomalous Nernst Angle in Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa Thin Film. IEEE Magnetics Letters 13, 1–5 (2022) Seki et al. [2018] Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Nagasawa, R., Oyanagi, K., Hirai, T., Modak, R., Kobayashi, S., Uchida, K.-i.: Anomalous Ettingshausen effect in iron–carbon alloys. Applied Physics Letters 121(6), 062401 (2022) Miura et al. [2020] Miura, A., Iguchi, R., Seki, T., Takanashi, K., Uchida, K.-i.: Spin-mediated charge-to-heat current conversion phenomena in ferromagnetic binary alloys. Physical Review Materials 4(3), 034409 (2020) Uchida et al. [2018] Uchida, K.-i., Daimon, S., Iguchi, R., Saitoh, E.: Observation of anisotropic magneto-Peltier effect in nickel. Nature 558(7708), 95–99 (2018) Menges et al. [2016] Menges, F., Mensch, P., Schmid, H., Riel, H., Stemmer, A., Gotsmann, B.: Temperature mapping of operating nanoscale devices by scanning probe thermometry. Nature Communications 7(1), 10874 (2016) Harzheim et al. [2018] Harzheim, A., Spiece, J., Evangeli, C., McCann, E., Falko, V., Sheng, Y., Warner, J.H., Briggs, G.A.D., Mol, J.A., Gehring, P., et al.: Geometrically enhanced thermoelectric effects in graphene nanoconstrictions. Nano Letters 18(12), 7719–7725 (2018) Spiece et al. [2018] Spiece, J., Evangeli, C., Lulla, K., Robson, A., Robinson, B., Kolosov, O.: Improving accuracy of nanothermal measurements via spatially distributed scanning thermal microscope probes. Journal of Applied Physics 124(1), 015101 (2018) Das et al. [2019] Das, R., Iguchi, R., Uchida, K.-i.: Systematic investigation of anisotropic magneto–peltier effect and anomalous ettingshausen effect in Ni thin films. Physical Review Applied 11(3), 034022 (2019) Miura et al. [2020] Miura, A., Masuda, K., Hirai, T., Iguchi, R., Seki, T., Miura, Y., Tsuchiura, H., Takanashi, K., Uchida, K.-i.: High-temperature dependence of anomalous Ettingshausen effect in SmCo55{}_{5}start_FLOATSUBSCRIPT 5 end_FLOATSUBSCRIPT-type permanent magnets. Applied Physics Letters 117(8), 082408 (2020) Hu et al. [2022] Hu, J., Zhang, Y., Huo, X., Li, N., Liu, S., Yu, D., Ansermet, J.-P., Granville, S., Yu, H.: Large Anomalous Nernst Angle in Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa Thin Film. IEEE Magnetics Letters 13, 1–5 (2022) Seki et al. [2018] Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Miura, A., Iguchi, R., Seki, T., Takanashi, K., Uchida, K.-i.: Spin-mediated charge-to-heat current conversion phenomena in ferromagnetic binary alloys. Physical Review Materials 4(3), 034409 (2020) Uchida et al. [2018] Uchida, K.-i., Daimon, S., Iguchi, R., Saitoh, E.: Observation of anisotropic magneto-Peltier effect in nickel. Nature 558(7708), 95–99 (2018) Menges et al. [2016] Menges, F., Mensch, P., Schmid, H., Riel, H., Stemmer, A., Gotsmann, B.: Temperature mapping of operating nanoscale devices by scanning probe thermometry. Nature Communications 7(1), 10874 (2016) Harzheim et al. [2018] Harzheim, A., Spiece, J., Evangeli, C., McCann, E., Falko, V., Sheng, Y., Warner, J.H., Briggs, G.A.D., Mol, J.A., Gehring, P., et al.: Geometrically enhanced thermoelectric effects in graphene nanoconstrictions. Nano Letters 18(12), 7719–7725 (2018) Spiece et al. [2018] Spiece, J., Evangeli, C., Lulla, K., Robson, A., Robinson, B., Kolosov, O.: Improving accuracy of nanothermal measurements via spatially distributed scanning thermal microscope probes. Journal of Applied Physics 124(1), 015101 (2018) Das et al. [2019] Das, R., Iguchi, R., Uchida, K.-i.: Systematic investigation of anisotropic magneto–peltier effect and anomalous ettingshausen effect in Ni thin films. Physical Review Applied 11(3), 034022 (2019) Miura et al. [2020] Miura, A., Masuda, K., Hirai, T., Iguchi, R., Seki, T., Miura, Y., Tsuchiura, H., Takanashi, K., Uchida, K.-i.: High-temperature dependence of anomalous Ettingshausen effect in SmCo55{}_{5}start_FLOATSUBSCRIPT 5 end_FLOATSUBSCRIPT-type permanent magnets. Applied Physics Letters 117(8), 082408 (2020) Hu et al. [2022] Hu, J., Zhang, Y., Huo, X., Li, N., Liu, S., Yu, D., Ansermet, J.-P., Granville, S., Yu, H.: Large Anomalous Nernst Angle in Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa Thin Film. IEEE Magnetics Letters 13, 1–5 (2022) Seki et al. [2018] Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Uchida, K.-i., Daimon, S., Iguchi, R., Saitoh, E.: Observation of anisotropic magneto-Peltier effect in nickel. Nature 558(7708), 95–99 (2018) Menges et al. [2016] Menges, F., Mensch, P., Schmid, H., Riel, H., Stemmer, A., Gotsmann, B.: Temperature mapping of operating nanoscale devices by scanning probe thermometry. Nature Communications 7(1), 10874 (2016) Harzheim et al. [2018] Harzheim, A., Spiece, J., Evangeli, C., McCann, E., Falko, V., Sheng, Y., Warner, J.H., Briggs, G.A.D., Mol, J.A., Gehring, P., et al.: Geometrically enhanced thermoelectric effects in graphene nanoconstrictions. Nano Letters 18(12), 7719–7725 (2018) Spiece et al. [2018] Spiece, J., Evangeli, C., Lulla, K., Robson, A., Robinson, B., Kolosov, O.: Improving accuracy of nanothermal measurements via spatially distributed scanning thermal microscope probes. Journal of Applied Physics 124(1), 015101 (2018) Das et al. [2019] Das, R., Iguchi, R., Uchida, K.-i.: Systematic investigation of anisotropic magneto–peltier effect and anomalous ettingshausen effect in Ni thin films. Physical Review Applied 11(3), 034022 (2019) Miura et al. [2020] Miura, A., Masuda, K., Hirai, T., Iguchi, R., Seki, T., Miura, Y., Tsuchiura, H., Takanashi, K., Uchida, K.-i.: High-temperature dependence of anomalous Ettingshausen effect in SmCo55{}_{5}start_FLOATSUBSCRIPT 5 end_FLOATSUBSCRIPT-type permanent magnets. Applied Physics Letters 117(8), 082408 (2020) Hu et al. [2022] Hu, J., Zhang, Y., Huo, X., Li, N., Liu, S., Yu, D., Ansermet, J.-P., Granville, S., Yu, H.: Large Anomalous Nernst Angle in Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa Thin Film. IEEE Magnetics Letters 13, 1–5 (2022) Seki et al. [2018] Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Menges, F., Mensch, P., Schmid, H., Riel, H., Stemmer, A., Gotsmann, B.: Temperature mapping of operating nanoscale devices by scanning probe thermometry. Nature Communications 7(1), 10874 (2016) Harzheim et al. [2018] Harzheim, A., Spiece, J., Evangeli, C., McCann, E., Falko, V., Sheng, Y., Warner, J.H., Briggs, G.A.D., Mol, J.A., Gehring, P., et al.: Geometrically enhanced thermoelectric effects in graphene nanoconstrictions. Nano Letters 18(12), 7719–7725 (2018) Spiece et al. [2018] Spiece, J., Evangeli, C., Lulla, K., Robson, A., Robinson, B., Kolosov, O.: Improving accuracy of nanothermal measurements via spatially distributed scanning thermal microscope probes. Journal of Applied Physics 124(1), 015101 (2018) Das et al. [2019] Das, R., Iguchi, R., Uchida, K.-i.: Systematic investigation of anisotropic magneto–peltier effect and anomalous ettingshausen effect in Ni thin films. Physical Review Applied 11(3), 034022 (2019) Miura et al. [2020] Miura, A., Masuda, K., Hirai, T., Iguchi, R., Seki, T., Miura, Y., Tsuchiura, H., Takanashi, K., Uchida, K.-i.: High-temperature dependence of anomalous Ettingshausen effect in SmCo55{}_{5}start_FLOATSUBSCRIPT 5 end_FLOATSUBSCRIPT-type permanent magnets. Applied Physics Letters 117(8), 082408 (2020) Hu et al. [2022] Hu, J., Zhang, Y., Huo, X., Li, N., Liu, S., Yu, D., Ansermet, J.-P., Granville, S., Yu, H.: Large Anomalous Nernst Angle in Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa Thin Film. IEEE Magnetics Letters 13, 1–5 (2022) Seki et al. [2018] Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Harzheim, A., Spiece, J., Evangeli, C., McCann, E., Falko, V., Sheng, Y., Warner, J.H., Briggs, G.A.D., Mol, J.A., Gehring, P., et al.: Geometrically enhanced thermoelectric effects in graphene nanoconstrictions. Nano Letters 18(12), 7719–7725 (2018) Spiece et al. [2018] Spiece, J., Evangeli, C., Lulla, K., Robson, A., Robinson, B., Kolosov, O.: Improving accuracy of nanothermal measurements via spatially distributed scanning thermal microscope probes. Journal of Applied Physics 124(1), 015101 (2018) Das et al. [2019] Das, R., Iguchi, R., Uchida, K.-i.: Systematic investigation of anisotropic magneto–peltier effect and anomalous ettingshausen effect in Ni thin films. Physical Review Applied 11(3), 034022 (2019) Miura et al. [2020] Miura, A., Masuda, K., Hirai, T., Iguchi, R., Seki, T., Miura, Y., Tsuchiura, H., Takanashi, K., Uchida, K.-i.: High-temperature dependence of anomalous Ettingshausen effect in SmCo55{}_{5}start_FLOATSUBSCRIPT 5 end_FLOATSUBSCRIPT-type permanent magnets. Applied Physics Letters 117(8), 082408 (2020) Hu et al. [2022] Hu, J., Zhang, Y., Huo, X., Li, N., Liu, S., Yu, D., Ansermet, J.-P., Granville, S., Yu, H.: Large Anomalous Nernst Angle in Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa Thin Film. IEEE Magnetics Letters 13, 1–5 (2022) Seki et al. [2018] Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Spiece, J., Evangeli, C., Lulla, K., Robson, A., Robinson, B., Kolosov, O.: Improving accuracy of nanothermal measurements via spatially distributed scanning thermal microscope probes. Journal of Applied Physics 124(1), 015101 (2018) Das et al. [2019] Das, R., Iguchi, R., Uchida, K.-i.: Systematic investigation of anisotropic magneto–peltier effect and anomalous ettingshausen effect in Ni thin films. Physical Review Applied 11(3), 034022 (2019) Miura et al. [2020] Miura, A., Masuda, K., Hirai, T., Iguchi, R., Seki, T., Miura, Y., Tsuchiura, H., Takanashi, K., Uchida, K.-i.: High-temperature dependence of anomalous Ettingshausen effect in SmCo55{}_{5}start_FLOATSUBSCRIPT 5 end_FLOATSUBSCRIPT-type permanent magnets. Applied Physics Letters 117(8), 082408 (2020) Hu et al. [2022] Hu, J., Zhang, Y., Huo, X., Li, N., Liu, S., Yu, D., Ansermet, J.-P., Granville, S., Yu, H.: Large Anomalous Nernst Angle in Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa Thin Film. IEEE Magnetics Letters 13, 1–5 (2022) Seki et al. [2018] Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Das, R., Iguchi, R., Uchida, K.-i.: Systematic investigation of anisotropic magneto–peltier effect and anomalous ettingshausen effect in Ni thin films. Physical Review Applied 11(3), 034022 (2019) Miura et al. [2020] Miura, A., Masuda, K., Hirai, T., Iguchi, R., Seki, T., Miura, Y., Tsuchiura, H., Takanashi, K., Uchida, K.-i.: High-temperature dependence of anomalous Ettingshausen effect in SmCo55{}_{5}start_FLOATSUBSCRIPT 5 end_FLOATSUBSCRIPT-type permanent magnets. Applied Physics Letters 117(8), 082408 (2020) Hu et al. [2022] Hu, J., Zhang, Y., Huo, X., Li, N., Liu, S., Yu, D., Ansermet, J.-P., Granville, S., Yu, H.: Large Anomalous Nernst Angle in Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa Thin Film. IEEE Magnetics Letters 13, 1–5 (2022) Seki et al. [2018] Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Miura, A., Masuda, K., Hirai, T., Iguchi, R., Seki, T., Miura, Y., Tsuchiura, H., Takanashi, K., Uchida, K.-i.: High-temperature dependence of anomalous Ettingshausen effect in SmCo55{}_{5}start_FLOATSUBSCRIPT 5 end_FLOATSUBSCRIPT-type permanent magnets. Applied Physics Letters 117(8), 082408 (2020) Hu et al. [2022] Hu, J., Zhang, Y., Huo, X., Li, N., Liu, S., Yu, D., Ansermet, J.-P., Granville, S., Yu, H.: Large Anomalous Nernst Angle in Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa Thin Film. IEEE Magnetics Letters 13, 1–5 (2022) Seki et al. [2018] Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Hu, J., Zhang, Y., Huo, X., Li, N., Liu, S., Yu, D., Ansermet, J.-P., Granville, S., Yu, H.: Large Anomalous Nernst Angle in Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa Thin Film. IEEE Magnetics Letters 13, 1–5 (2022) Seki et al. [2018] Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. 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Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1
- Yang, H., You, W., Wang, J., Huang, J., Xi, C., Xu, X., Cao, C., Tian, M., Xu, Z.-A., Dai, J., Li, Y.: Giant anomalous Nernst effect in the magnetic Weyl semimetal Co3Sn2S2subscriptCo3subscriptSn2subscriptS2{\mathrm{Co}}_{3}{\mathrm{Sn}}_{2}{\mathrm{S}}_{2}roman_Co start_POSTSUBSCRIPT 3 end_POSTSUBSCRIPT roman_Sn start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_S start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT. Phys. Rev. Mater. 4, 024202 (2020) Bridgman [1924] Bridgman, P.: The connections between the four transverse galvanomagnetic and thermomagnetic phenomena. Physical Review 24(6), 644 (1924) Mizuno et al. 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[2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Bridgman, P.: The connections between the four transverse galvanomagnetic and thermomagnetic phenomena. Physical Review 24(6), 644 (1924) Mizuno et al. [2022] Mizuno, H., Modak, R., Hirai, T., Takahagi, A., Sakuraba, Y., Iguchi, R., Uchida, K.-i.: Deposition temperature dependence of thermo-spin and magneto-thermoelectric conversion in Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa films on Y33{}_{3}start_FLOATSUBSCRIPT 3 end_FLOATSUBSCRIPTFe55{}_{5}start_FLOATSUBSCRIPT 5 end_FLOATSUBSCRIPTO1212{}_{12}start_FLOATSUBSCRIPT 12 end_FLOATSUBSCRIPT and Gd33{}_{3}start_FLOATSUBSCRIPT 3 end_FLOATSUBSCRIPTGa55{}_{5}start_FLOATSUBSCRIPT 5 end_FLOATSUBSCRIPTO1212{}_{12}start_FLOATSUBSCRIPT 12 end_FLOATSUBSCRIPT. Applied Physics Letters 120(20), 202401 (2022) Zhang et al. [2021] Zhang, Y., Yin, Y., Dubuis, G., Butler, T., Medhekar, N.V., Granville, S.: Berry curvature origin of the thickness-dependent anomalous Hall effect in a ferromagnetic Weyl semimetal. npj Quantum Materials 6(1), 17 (2021) Miura et al. [2019] Miura, A., Sepehri-Amin, H., Masuda, K., Tsuchiura, H., Miura, Y., Iguchi, R., Sakuraba, Y., Shiomi, J., Hono, K., Uchida, K.-i.: Observation of anomalous Ettingshausen effect and large transverse thermoelectric conductivity in permanent magnets. Applied Physics Letters 115(22), 222403 (2019) Nagasawa et al. [2022] Nagasawa, R., Oyanagi, K., Hirai, T., Modak, R., Kobayashi, S., Uchida, K.-i.: Anomalous Ettingshausen effect in iron–carbon alloys. Applied Physics Letters 121(6), 062401 (2022) Miura et al. [2020] Miura, A., Iguchi, R., Seki, T., Takanashi, K., Uchida, K.-i.: Spin-mediated charge-to-heat current conversion phenomena in ferromagnetic binary alloys. Physical Review Materials 4(3), 034409 (2020) Uchida et al. [2018] Uchida, K.-i., Daimon, S., Iguchi, R., Saitoh, E.: Observation of anisotropic magneto-Peltier effect in nickel. Nature 558(7708), 95–99 (2018) Menges et al. [2016] Menges, F., Mensch, P., Schmid, H., Riel, H., Stemmer, A., Gotsmann, B.: Temperature mapping of operating nanoscale devices by scanning probe thermometry. Nature Communications 7(1), 10874 (2016) Harzheim et al. [2018] Harzheim, A., Spiece, J., Evangeli, C., McCann, E., Falko, V., Sheng, Y., Warner, J.H., Briggs, G.A.D., Mol, J.A., Gehring, P., et al.: Geometrically enhanced thermoelectric effects in graphene nanoconstrictions. Nano Letters 18(12), 7719–7725 (2018) Spiece et al. [2018] Spiece, J., Evangeli, C., Lulla, K., Robson, A., Robinson, B., Kolosov, O.: Improving accuracy of nanothermal measurements via spatially distributed scanning thermal microscope probes. Journal of Applied Physics 124(1), 015101 (2018) Das et al. [2019] Das, R., Iguchi, R., Uchida, K.-i.: Systematic investigation of anisotropic magneto–peltier effect and anomalous ettingshausen effect in Ni thin films. Physical Review Applied 11(3), 034022 (2019) Miura et al. [2020] Miura, A., Masuda, K., Hirai, T., Iguchi, R., Seki, T., Miura, Y., Tsuchiura, H., Takanashi, K., Uchida, K.-i.: High-temperature dependence of anomalous Ettingshausen effect in SmCo55{}_{5}start_FLOATSUBSCRIPT 5 end_FLOATSUBSCRIPT-type permanent magnets. Applied Physics Letters 117(8), 082408 (2020) Hu et al. [2022] Hu, J., Zhang, Y., Huo, X., Li, N., Liu, S., Yu, D., Ansermet, J.-P., Granville, S., Yu, H.: Large Anomalous Nernst Angle in Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa Thin Film. IEEE Magnetics Letters 13, 1–5 (2022) Seki et al. [2018] Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Mizuno, H., Modak, R., Hirai, T., Takahagi, A., Sakuraba, Y., Iguchi, R., Uchida, K.-i.: Deposition temperature dependence of thermo-spin and magneto-thermoelectric conversion in Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa films on Y33{}_{3}start_FLOATSUBSCRIPT 3 end_FLOATSUBSCRIPTFe55{}_{5}start_FLOATSUBSCRIPT 5 end_FLOATSUBSCRIPTO1212{}_{12}start_FLOATSUBSCRIPT 12 end_FLOATSUBSCRIPT and Gd33{}_{3}start_FLOATSUBSCRIPT 3 end_FLOATSUBSCRIPTGa55{}_{5}start_FLOATSUBSCRIPT 5 end_FLOATSUBSCRIPTO1212{}_{12}start_FLOATSUBSCRIPT 12 end_FLOATSUBSCRIPT. Applied Physics Letters 120(20), 202401 (2022) Zhang et al. [2021] Zhang, Y., Yin, Y., Dubuis, G., Butler, T., Medhekar, N.V., Granville, S.: Berry curvature origin of the thickness-dependent anomalous Hall effect in a ferromagnetic Weyl semimetal. npj Quantum Materials 6(1), 17 (2021) Miura et al. [2019] Miura, A., Sepehri-Amin, H., Masuda, K., Tsuchiura, H., Miura, Y., Iguchi, R., Sakuraba, Y., Shiomi, J., Hono, K., Uchida, K.-i.: Observation of anomalous Ettingshausen effect and large transverse thermoelectric conductivity in permanent magnets. Applied Physics Letters 115(22), 222403 (2019) Nagasawa et al. [2022] Nagasawa, R., Oyanagi, K., Hirai, T., Modak, R., Kobayashi, S., Uchida, K.-i.: Anomalous Ettingshausen effect in iron–carbon alloys. Applied Physics Letters 121(6), 062401 (2022) Miura et al. [2020] Miura, A., Iguchi, R., Seki, T., Takanashi, K., Uchida, K.-i.: Spin-mediated charge-to-heat current conversion phenomena in ferromagnetic binary alloys. Physical Review Materials 4(3), 034409 (2020) Uchida et al. [2018] Uchida, K.-i., Daimon, S., Iguchi, R., Saitoh, E.: Observation of anisotropic magneto-Peltier effect in nickel. Nature 558(7708), 95–99 (2018) Menges et al. [2016] Menges, F., Mensch, P., Schmid, H., Riel, H., Stemmer, A., Gotsmann, B.: Temperature mapping of operating nanoscale devices by scanning probe thermometry. Nature Communications 7(1), 10874 (2016) Harzheim et al. [2018] Harzheim, A., Spiece, J., Evangeli, C., McCann, E., Falko, V., Sheng, Y., Warner, J.H., Briggs, G.A.D., Mol, J.A., Gehring, P., et al.: Geometrically enhanced thermoelectric effects in graphene nanoconstrictions. Nano Letters 18(12), 7719–7725 (2018) Spiece et al. [2018] Spiece, J., Evangeli, C., Lulla, K., Robson, A., Robinson, B., Kolosov, O.: Improving accuracy of nanothermal measurements via spatially distributed scanning thermal microscope probes. Journal of Applied Physics 124(1), 015101 (2018) Das et al. [2019] Das, R., Iguchi, R., Uchida, K.-i.: Systematic investigation of anisotropic magneto–peltier effect and anomalous ettingshausen effect in Ni thin films. Physical Review Applied 11(3), 034022 (2019) Miura et al. [2020] Miura, A., Masuda, K., Hirai, T., Iguchi, R., Seki, T., Miura, Y., Tsuchiura, H., Takanashi, K., Uchida, K.-i.: High-temperature dependence of anomalous Ettingshausen effect in SmCo55{}_{5}start_FLOATSUBSCRIPT 5 end_FLOATSUBSCRIPT-type permanent magnets. Applied Physics Letters 117(8), 082408 (2020) Hu et al. [2022] Hu, J., Zhang, Y., Huo, X., Li, N., Liu, S., Yu, D., Ansermet, J.-P., Granville, S., Yu, H.: Large Anomalous Nernst Angle in Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa Thin Film. IEEE Magnetics Letters 13, 1–5 (2022) Seki et al. [2018] Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. 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[2019] Miura, A., Sepehri-Amin, H., Masuda, K., Tsuchiura, H., Miura, Y., Iguchi, R., Sakuraba, Y., Shiomi, J., Hono, K., Uchida, K.-i.: Observation of anomalous Ettingshausen effect and large transverse thermoelectric conductivity in permanent magnets. Applied Physics Letters 115(22), 222403 (2019) Nagasawa et al. [2022] Nagasawa, R., Oyanagi, K., Hirai, T., Modak, R., Kobayashi, S., Uchida, K.-i.: Anomalous Ettingshausen effect in iron–carbon alloys. Applied Physics Letters 121(6), 062401 (2022) Miura et al. [2020] Miura, A., Iguchi, R., Seki, T., Takanashi, K., Uchida, K.-i.: Spin-mediated charge-to-heat current conversion phenomena in ferromagnetic binary alloys. Physical Review Materials 4(3), 034409 (2020) Uchida et al. [2018] Uchida, K.-i., Daimon, S., Iguchi, R., Saitoh, E.: Observation of anisotropic magneto-Peltier effect in nickel. Nature 558(7708), 95–99 (2018) Menges et al. [2016] Menges, F., Mensch, P., Schmid, H., Riel, H., Stemmer, A., Gotsmann, B.: Temperature mapping of operating nanoscale devices by scanning probe thermometry. Nature Communications 7(1), 10874 (2016) Harzheim et al. [2018] Harzheim, A., Spiece, J., Evangeli, C., McCann, E., Falko, V., Sheng, Y., Warner, J.H., Briggs, G.A.D., Mol, J.A., Gehring, P., et al.: Geometrically enhanced thermoelectric effects in graphene nanoconstrictions. Nano Letters 18(12), 7719–7725 (2018) Spiece et al. [2018] Spiece, J., Evangeli, C., Lulla, K., Robson, A., Robinson, B., Kolosov, O.: Improving accuracy of nanothermal measurements via spatially distributed scanning thermal microscope probes. Journal of Applied Physics 124(1), 015101 (2018) Das et al. [2019] Das, R., Iguchi, R., Uchida, K.-i.: Systematic investigation of anisotropic magneto–peltier effect and anomalous ettingshausen effect in Ni thin films. Physical Review Applied 11(3), 034022 (2019) Miura et al. [2020] Miura, A., Masuda, K., Hirai, T., Iguchi, R., Seki, T., Miura, Y., Tsuchiura, H., Takanashi, K., Uchida, K.-i.: High-temperature dependence of anomalous Ettingshausen effect in SmCo55{}_{5}start_FLOATSUBSCRIPT 5 end_FLOATSUBSCRIPT-type permanent magnets. Applied Physics Letters 117(8), 082408 (2020) Hu et al. [2022] Hu, J., Zhang, Y., Huo, X., Li, N., Liu, S., Yu, D., Ansermet, J.-P., Granville, S., Yu, H.: Large Anomalous Nernst Angle in Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa Thin Film. IEEE Magnetics Letters 13, 1–5 (2022) Seki et al. [2018] Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Miura, A., Sepehri-Amin, H., Masuda, K., Tsuchiura, H., Miura, Y., Iguchi, R., Sakuraba, Y., Shiomi, J., Hono, K., Uchida, K.-i.: Observation of anomalous Ettingshausen effect and large transverse thermoelectric conductivity in permanent magnets. Applied Physics Letters 115(22), 222403 (2019) Nagasawa et al. [2022] Nagasawa, R., Oyanagi, K., Hirai, T., Modak, R., Kobayashi, S., Uchida, K.-i.: Anomalous Ettingshausen effect in iron–carbon alloys. Applied Physics Letters 121(6), 062401 (2022) Miura et al. [2020] Miura, A., Iguchi, R., Seki, T., Takanashi, K., Uchida, K.-i.: Spin-mediated charge-to-heat current conversion phenomena in ferromagnetic binary alloys. Physical Review Materials 4(3), 034409 (2020) Uchida et al. [2018] Uchida, K.-i., Daimon, S., Iguchi, R., Saitoh, E.: Observation of anisotropic magneto-Peltier effect in nickel. Nature 558(7708), 95–99 (2018) Menges et al. [2016] Menges, F., Mensch, P., Schmid, H., Riel, H., Stemmer, A., Gotsmann, B.: Temperature mapping of operating nanoscale devices by scanning probe thermometry. Nature Communications 7(1), 10874 (2016) Harzheim et al. [2018] Harzheim, A., Spiece, J., Evangeli, C., McCann, E., Falko, V., Sheng, Y., Warner, J.H., Briggs, G.A.D., Mol, J.A., Gehring, P., et al.: Geometrically enhanced thermoelectric effects in graphene nanoconstrictions. Nano Letters 18(12), 7719–7725 (2018) Spiece et al. [2018] Spiece, J., Evangeli, C., Lulla, K., Robson, A., Robinson, B., Kolosov, O.: Improving accuracy of nanothermal measurements via spatially distributed scanning thermal microscope probes. Journal of Applied Physics 124(1), 015101 (2018) Das et al. [2019] Das, R., Iguchi, R., Uchida, K.-i.: Systematic investigation of anisotropic magneto–peltier effect and anomalous ettingshausen effect in Ni thin films. Physical Review Applied 11(3), 034022 (2019) Miura et al. [2020] Miura, A., Masuda, K., Hirai, T., Iguchi, R., Seki, T., Miura, Y., Tsuchiura, H., Takanashi, K., Uchida, K.-i.: High-temperature dependence of anomalous Ettingshausen effect in SmCo55{}_{5}start_FLOATSUBSCRIPT 5 end_FLOATSUBSCRIPT-type permanent magnets. Applied Physics Letters 117(8), 082408 (2020) Hu et al. [2022] Hu, J., Zhang, Y., Huo, X., Li, N., Liu, S., Yu, D., Ansermet, J.-P., Granville, S., Yu, H.: Large Anomalous Nernst Angle in Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa Thin Film. IEEE Magnetics Letters 13, 1–5 (2022) Seki et al. [2018] Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Nagasawa, R., Oyanagi, K., Hirai, T., Modak, R., Kobayashi, S., Uchida, K.-i.: Anomalous Ettingshausen effect in iron–carbon alloys. Applied Physics Letters 121(6), 062401 (2022) Miura et al. [2020] Miura, A., Iguchi, R., Seki, T., Takanashi, K., Uchida, K.-i.: Spin-mediated charge-to-heat current conversion phenomena in ferromagnetic binary alloys. Physical Review Materials 4(3), 034409 (2020) Uchida et al. [2018] Uchida, K.-i., Daimon, S., Iguchi, R., Saitoh, E.: Observation of anisotropic magneto-Peltier effect in nickel. Nature 558(7708), 95–99 (2018) Menges et al. [2016] Menges, F., Mensch, P., Schmid, H., Riel, H., Stemmer, A., Gotsmann, B.: Temperature mapping of operating nanoscale devices by scanning probe thermometry. Nature Communications 7(1), 10874 (2016) Harzheim et al. [2018] Harzheim, A., Spiece, J., Evangeli, C., McCann, E., Falko, V., Sheng, Y., Warner, J.H., Briggs, G.A.D., Mol, J.A., Gehring, P., et al.: Geometrically enhanced thermoelectric effects in graphene nanoconstrictions. Nano Letters 18(12), 7719–7725 (2018) Spiece et al. [2018] Spiece, J., Evangeli, C., Lulla, K., Robson, A., Robinson, B., Kolosov, O.: Improving accuracy of nanothermal measurements via spatially distributed scanning thermal microscope probes. Journal of Applied Physics 124(1), 015101 (2018) Das et al. [2019] Das, R., Iguchi, R., Uchida, K.-i.: Systematic investigation of anisotropic magneto–peltier effect and anomalous ettingshausen effect in Ni thin films. Physical Review Applied 11(3), 034022 (2019) Miura et al. [2020] Miura, A., Masuda, K., Hirai, T., Iguchi, R., Seki, T., Miura, Y., Tsuchiura, H., Takanashi, K., Uchida, K.-i.: High-temperature dependence of anomalous Ettingshausen effect in SmCo55{}_{5}start_FLOATSUBSCRIPT 5 end_FLOATSUBSCRIPT-type permanent magnets. Applied Physics Letters 117(8), 082408 (2020) Hu et al. [2022] Hu, J., Zhang, Y., Huo, X., Li, N., Liu, S., Yu, D., Ansermet, J.-P., Granville, S., Yu, H.: Large Anomalous Nernst Angle in Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa Thin Film. IEEE Magnetics Letters 13, 1–5 (2022) Seki et al. [2018] Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Miura, A., Iguchi, R., Seki, T., Takanashi, K., Uchida, K.-i.: Spin-mediated charge-to-heat current conversion phenomena in ferromagnetic binary alloys. Physical Review Materials 4(3), 034409 (2020) Uchida et al. [2018] Uchida, K.-i., Daimon, S., Iguchi, R., Saitoh, E.: Observation of anisotropic magneto-Peltier effect in nickel. Nature 558(7708), 95–99 (2018) Menges et al. [2016] Menges, F., Mensch, P., Schmid, H., Riel, H., Stemmer, A., Gotsmann, B.: Temperature mapping of operating nanoscale devices by scanning probe thermometry. Nature Communications 7(1), 10874 (2016) Harzheim et al. [2018] Harzheim, A., Spiece, J., Evangeli, C., McCann, E., Falko, V., Sheng, Y., Warner, J.H., Briggs, G.A.D., Mol, J.A., Gehring, P., et al.: Geometrically enhanced thermoelectric effects in graphene nanoconstrictions. Nano Letters 18(12), 7719–7725 (2018) Spiece et al. [2018] Spiece, J., Evangeli, C., Lulla, K., Robson, A., Robinson, B., Kolosov, O.: Improving accuracy of nanothermal measurements via spatially distributed scanning thermal microscope probes. Journal of Applied Physics 124(1), 015101 (2018) Das et al. [2019] Das, R., Iguchi, R., Uchida, K.-i.: Systematic investigation of anisotropic magneto–peltier effect and anomalous ettingshausen effect in Ni thin films. Physical Review Applied 11(3), 034022 (2019) Miura et al. [2020] Miura, A., Masuda, K., Hirai, T., Iguchi, R., Seki, T., Miura, Y., Tsuchiura, H., Takanashi, K., Uchida, K.-i.: High-temperature dependence of anomalous Ettingshausen effect in SmCo55{}_{5}start_FLOATSUBSCRIPT 5 end_FLOATSUBSCRIPT-type permanent magnets. Applied Physics Letters 117(8), 082408 (2020) Hu et al. [2022] Hu, J., Zhang, Y., Huo, X., Li, N., Liu, S., Yu, D., Ansermet, J.-P., Granville, S., Yu, H.: Large Anomalous Nernst Angle in Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa Thin Film. IEEE Magnetics Letters 13, 1–5 (2022) Seki et al. [2018] Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Uchida, K.-i., Daimon, S., Iguchi, R., Saitoh, E.: Observation of anisotropic magneto-Peltier effect in nickel. Nature 558(7708), 95–99 (2018) Menges et al. [2016] Menges, F., Mensch, P., Schmid, H., Riel, H., Stemmer, A., Gotsmann, B.: Temperature mapping of operating nanoscale devices by scanning probe thermometry. Nature Communications 7(1), 10874 (2016) Harzheim et al. [2018] Harzheim, A., Spiece, J., Evangeli, C., McCann, E., Falko, V., Sheng, Y., Warner, J.H., Briggs, G.A.D., Mol, J.A., Gehring, P., et al.: Geometrically enhanced thermoelectric effects in graphene nanoconstrictions. Nano Letters 18(12), 7719–7725 (2018) Spiece et al. [2018] Spiece, J., Evangeli, C., Lulla, K., Robson, A., Robinson, B., Kolosov, O.: Improving accuracy of nanothermal measurements via spatially distributed scanning thermal microscope probes. Journal of Applied Physics 124(1), 015101 (2018) Das et al. [2019] Das, R., Iguchi, R., Uchida, K.-i.: Systematic investigation of anisotropic magneto–peltier effect and anomalous ettingshausen effect in Ni thin films. Physical Review Applied 11(3), 034022 (2019) Miura et al. [2020] Miura, A., Masuda, K., Hirai, T., Iguchi, R., Seki, T., Miura, Y., Tsuchiura, H., Takanashi, K., Uchida, K.-i.: High-temperature dependence of anomalous Ettingshausen effect in SmCo55{}_{5}start_FLOATSUBSCRIPT 5 end_FLOATSUBSCRIPT-type permanent magnets. Applied Physics Letters 117(8), 082408 (2020) Hu et al. [2022] Hu, J., Zhang, Y., Huo, X., Li, N., Liu, S., Yu, D., Ansermet, J.-P., Granville, S., Yu, H.: Large Anomalous Nernst Angle in Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa Thin Film. IEEE Magnetics Letters 13, 1–5 (2022) Seki et al. [2018] Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Menges, F., Mensch, P., Schmid, H., Riel, H., Stemmer, A., Gotsmann, B.: Temperature mapping of operating nanoscale devices by scanning probe thermometry. Nature Communications 7(1), 10874 (2016) Harzheim et al. [2018] Harzheim, A., Spiece, J., Evangeli, C., McCann, E., Falko, V., Sheng, Y., Warner, J.H., Briggs, G.A.D., Mol, J.A., Gehring, P., et al.: Geometrically enhanced thermoelectric effects in graphene nanoconstrictions. Nano Letters 18(12), 7719–7725 (2018) Spiece et al. [2018] Spiece, J., Evangeli, C., Lulla, K., Robson, A., Robinson, B., Kolosov, O.: Improving accuracy of nanothermal measurements via spatially distributed scanning thermal microscope probes. Journal of Applied Physics 124(1), 015101 (2018) Das et al. [2019] Das, R., Iguchi, R., Uchida, K.-i.: Systematic investigation of anisotropic magneto–peltier effect and anomalous ettingshausen effect in Ni thin films. Physical Review Applied 11(3), 034022 (2019) Miura et al. [2020] Miura, A., Masuda, K., Hirai, T., Iguchi, R., Seki, T., Miura, Y., Tsuchiura, H., Takanashi, K., Uchida, K.-i.: High-temperature dependence of anomalous Ettingshausen effect in SmCo55{}_{5}start_FLOATSUBSCRIPT 5 end_FLOATSUBSCRIPT-type permanent magnets. Applied Physics Letters 117(8), 082408 (2020) Hu et al. [2022] Hu, J., Zhang, Y., Huo, X., Li, N., Liu, S., Yu, D., Ansermet, J.-P., Granville, S., Yu, H.: Large Anomalous Nernst Angle in Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa Thin Film. IEEE Magnetics Letters 13, 1–5 (2022) Seki et al. [2018] Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Harzheim, A., Spiece, J., Evangeli, C., McCann, E., Falko, V., Sheng, Y., Warner, J.H., Briggs, G.A.D., Mol, J.A., Gehring, P., et al.: Geometrically enhanced thermoelectric effects in graphene nanoconstrictions. Nano Letters 18(12), 7719–7725 (2018) Spiece et al. [2018] Spiece, J., Evangeli, C., Lulla, K., Robson, A., Robinson, B., Kolosov, O.: Improving accuracy of nanothermal measurements via spatially distributed scanning thermal microscope probes. Journal of Applied Physics 124(1), 015101 (2018) Das et al. [2019] Das, R., Iguchi, R., Uchida, K.-i.: Systematic investigation of anisotropic magneto–peltier effect and anomalous ettingshausen effect in Ni thin films. Physical Review Applied 11(3), 034022 (2019) Miura et al. [2020] Miura, A., Masuda, K., Hirai, T., Iguchi, R., Seki, T., Miura, Y., Tsuchiura, H., Takanashi, K., Uchida, K.-i.: High-temperature dependence of anomalous Ettingshausen effect in SmCo55{}_{5}start_FLOATSUBSCRIPT 5 end_FLOATSUBSCRIPT-type permanent magnets. Applied Physics Letters 117(8), 082408 (2020) Hu et al. [2022] Hu, J., Zhang, Y., Huo, X., Li, N., Liu, S., Yu, D., Ansermet, J.-P., Granville, S., Yu, H.: Large Anomalous Nernst Angle in Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa Thin Film. IEEE Magnetics Letters 13, 1–5 (2022) Seki et al. [2018] Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Spiece, J., Evangeli, C., Lulla, K., Robson, A., Robinson, B., Kolosov, O.: Improving accuracy of nanothermal measurements via spatially distributed scanning thermal microscope probes. Journal of Applied Physics 124(1), 015101 (2018) Das et al. [2019] Das, R., Iguchi, R., Uchida, K.-i.: Systematic investigation of anisotropic magneto–peltier effect and anomalous ettingshausen effect in Ni thin films. Physical Review Applied 11(3), 034022 (2019) Miura et al. [2020] Miura, A., Masuda, K., Hirai, T., Iguchi, R., Seki, T., Miura, Y., Tsuchiura, H., Takanashi, K., Uchida, K.-i.: High-temperature dependence of anomalous Ettingshausen effect in SmCo55{}_{5}start_FLOATSUBSCRIPT 5 end_FLOATSUBSCRIPT-type permanent magnets. Applied Physics Letters 117(8), 082408 (2020) Hu et al. [2022] Hu, J., Zhang, Y., Huo, X., Li, N., Liu, S., Yu, D., Ansermet, J.-P., Granville, S., Yu, H.: Large Anomalous Nernst Angle in Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa Thin Film. IEEE Magnetics Letters 13, 1–5 (2022) Seki et al. [2018] Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Das, R., Iguchi, R., Uchida, K.-i.: Systematic investigation of anisotropic magneto–peltier effect and anomalous ettingshausen effect in Ni thin films. Physical Review Applied 11(3), 034022 (2019) Miura et al. [2020] Miura, A., Masuda, K., Hirai, T., Iguchi, R., Seki, T., Miura, Y., Tsuchiura, H., Takanashi, K., Uchida, K.-i.: High-temperature dependence of anomalous Ettingshausen effect in SmCo55{}_{5}start_FLOATSUBSCRIPT 5 end_FLOATSUBSCRIPT-type permanent magnets. Applied Physics Letters 117(8), 082408 (2020) Hu et al. [2022] Hu, J., Zhang, Y., Huo, X., Li, N., Liu, S., Yu, D., Ansermet, J.-P., Granville, S., Yu, H.: Large Anomalous Nernst Angle in Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa Thin Film. IEEE Magnetics Letters 13, 1–5 (2022) Seki et al. [2018] Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Miura, A., Masuda, K., Hirai, T., Iguchi, R., Seki, T., Miura, Y., Tsuchiura, H., Takanashi, K., Uchida, K.-i.: High-temperature dependence of anomalous Ettingshausen effect in SmCo55{}_{5}start_FLOATSUBSCRIPT 5 end_FLOATSUBSCRIPT-type permanent magnets. Applied Physics Letters 117(8), 082408 (2020) Hu et al. [2022] Hu, J., Zhang, Y., Huo, X., Li, N., Liu, S., Yu, D., Ansermet, J.-P., Granville, S., Yu, H.: Large Anomalous Nernst Angle in Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa Thin Film. IEEE Magnetics Letters 13, 1–5 (2022) Seki et al. [2018] Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Hu, J., Zhang, Y., Huo, X., Li, N., Liu, S., Yu, D., Ansermet, J.-P., Granville, S., Yu, H.: Large Anomalous Nernst Angle in Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa Thin Film. IEEE Magnetics Letters 13, 1–5 (2022) Seki et al. [2018] Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1
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[2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Mizuno, H., Modak, R., Hirai, T., Takahagi, A., Sakuraba, Y., Iguchi, R., Uchida, K.-i.: Deposition temperature dependence of thermo-spin and magneto-thermoelectric conversion in Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa films on Y33{}_{3}start_FLOATSUBSCRIPT 3 end_FLOATSUBSCRIPTFe55{}_{5}start_FLOATSUBSCRIPT 5 end_FLOATSUBSCRIPTO1212{}_{12}start_FLOATSUBSCRIPT 12 end_FLOATSUBSCRIPT and Gd33{}_{3}start_FLOATSUBSCRIPT 3 end_FLOATSUBSCRIPTGa55{}_{5}start_FLOATSUBSCRIPT 5 end_FLOATSUBSCRIPTO1212{}_{12}start_FLOATSUBSCRIPT 12 end_FLOATSUBSCRIPT. Applied Physics Letters 120(20), 202401 (2022) Zhang et al. [2021] Zhang, Y., Yin, Y., Dubuis, G., Butler, T., Medhekar, N.V., Granville, S.: Berry curvature origin of the thickness-dependent anomalous Hall effect in a ferromagnetic Weyl semimetal. npj Quantum Materials 6(1), 17 (2021) Miura et al. [2019] Miura, A., Sepehri-Amin, H., Masuda, K., Tsuchiura, H., Miura, Y., Iguchi, R., Sakuraba, Y., Shiomi, J., Hono, K., Uchida, K.-i.: Observation of anomalous Ettingshausen effect and large transverse thermoelectric conductivity in permanent magnets. Applied Physics Letters 115(22), 222403 (2019) Nagasawa et al. [2022] Nagasawa, R., Oyanagi, K., Hirai, T., Modak, R., Kobayashi, S., Uchida, K.-i.: Anomalous Ettingshausen effect in iron–carbon alloys. Applied Physics Letters 121(6), 062401 (2022) Miura et al. [2020] Miura, A., Iguchi, R., Seki, T., Takanashi, K., Uchida, K.-i.: Spin-mediated charge-to-heat current conversion phenomena in ferromagnetic binary alloys. Physical Review Materials 4(3), 034409 (2020) Uchida et al. [2018] Uchida, K.-i., Daimon, S., Iguchi, R., Saitoh, E.: Observation of anisotropic magneto-Peltier effect in nickel. Nature 558(7708), 95–99 (2018) Menges et al. [2016] Menges, F., Mensch, P., Schmid, H., Riel, H., Stemmer, A., Gotsmann, B.: Temperature mapping of operating nanoscale devices by scanning probe thermometry. Nature Communications 7(1), 10874 (2016) Harzheim et al. [2018] Harzheim, A., Spiece, J., Evangeli, C., McCann, E., Falko, V., Sheng, Y., Warner, J.H., Briggs, G.A.D., Mol, J.A., Gehring, P., et al.: Geometrically enhanced thermoelectric effects in graphene nanoconstrictions. Nano Letters 18(12), 7719–7725 (2018) Spiece et al. [2018] Spiece, J., Evangeli, C., Lulla, K., Robson, A., Robinson, B., Kolosov, O.: Improving accuracy of nanothermal measurements via spatially distributed scanning thermal microscope probes. Journal of Applied Physics 124(1), 015101 (2018) Das et al. [2019] Das, R., Iguchi, R., Uchida, K.-i.: Systematic investigation of anisotropic magneto–peltier effect and anomalous ettingshausen effect in Ni thin films. Physical Review Applied 11(3), 034022 (2019) Miura et al. [2020] Miura, A., Masuda, K., Hirai, T., Iguchi, R., Seki, T., Miura, Y., Tsuchiura, H., Takanashi, K., Uchida, K.-i.: High-temperature dependence of anomalous Ettingshausen effect in SmCo55{}_{5}start_FLOATSUBSCRIPT 5 end_FLOATSUBSCRIPT-type permanent magnets. Applied Physics Letters 117(8), 082408 (2020) Hu et al. [2022] Hu, J., Zhang, Y., Huo, X., Li, N., Liu, S., Yu, D., Ansermet, J.-P., Granville, S., Yu, H.: Large Anomalous Nernst Angle in Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa Thin Film. IEEE Magnetics Letters 13, 1–5 (2022) Seki et al. [2018] Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Zhang, Y., Yin, Y., Dubuis, G., Butler, T., Medhekar, N.V., Granville, S.: Berry curvature origin of the thickness-dependent anomalous Hall effect in a ferromagnetic Weyl semimetal. npj Quantum Materials 6(1), 17 (2021) Miura et al. [2019] Miura, A., Sepehri-Amin, H., Masuda, K., Tsuchiura, H., Miura, Y., Iguchi, R., Sakuraba, Y., Shiomi, J., Hono, K., Uchida, K.-i.: Observation of anomalous Ettingshausen effect and large transverse thermoelectric conductivity in permanent magnets. Applied Physics Letters 115(22), 222403 (2019) Nagasawa et al. [2022] Nagasawa, R., Oyanagi, K., Hirai, T., Modak, R., Kobayashi, S., Uchida, K.-i.: Anomalous Ettingshausen effect in iron–carbon alloys. Applied Physics Letters 121(6), 062401 (2022) Miura et al. [2020] Miura, A., Iguchi, R., Seki, T., Takanashi, K., Uchida, K.-i.: Spin-mediated charge-to-heat current conversion phenomena in ferromagnetic binary alloys. Physical Review Materials 4(3), 034409 (2020) Uchida et al. [2018] Uchida, K.-i., Daimon, S., Iguchi, R., Saitoh, E.: Observation of anisotropic magneto-Peltier effect in nickel. Nature 558(7708), 95–99 (2018) Menges et al. [2016] Menges, F., Mensch, P., Schmid, H., Riel, H., Stemmer, A., Gotsmann, B.: Temperature mapping of operating nanoscale devices by scanning probe thermometry. Nature Communications 7(1), 10874 (2016) Harzheim et al. [2018] Harzheim, A., Spiece, J., Evangeli, C., McCann, E., Falko, V., Sheng, Y., Warner, J.H., Briggs, G.A.D., Mol, J.A., Gehring, P., et al.: Geometrically enhanced thermoelectric effects in graphene nanoconstrictions. Nano Letters 18(12), 7719–7725 (2018) Spiece et al. [2018] Spiece, J., Evangeli, C., Lulla, K., Robson, A., Robinson, B., Kolosov, O.: Improving accuracy of nanothermal measurements via spatially distributed scanning thermal microscope probes. Journal of Applied Physics 124(1), 015101 (2018) Das et al. [2019] Das, R., Iguchi, R., Uchida, K.-i.: Systematic investigation of anisotropic magneto–peltier effect and anomalous ettingshausen effect in Ni thin films. Physical Review Applied 11(3), 034022 (2019) Miura et al. [2020] Miura, A., Masuda, K., Hirai, T., Iguchi, R., Seki, T., Miura, Y., Tsuchiura, H., Takanashi, K., Uchida, K.-i.: High-temperature dependence of anomalous Ettingshausen effect in SmCo55{}_{5}start_FLOATSUBSCRIPT 5 end_FLOATSUBSCRIPT-type permanent magnets. Applied Physics Letters 117(8), 082408 (2020) Hu et al. [2022] Hu, J., Zhang, Y., Huo, X., Li, N., Liu, S., Yu, D., Ansermet, J.-P., Granville, S., Yu, H.: Large Anomalous Nernst Angle in Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa Thin Film. IEEE Magnetics Letters 13, 1–5 (2022) Seki et al. [2018] Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Miura, A., Sepehri-Amin, H., Masuda, K., Tsuchiura, H., Miura, Y., Iguchi, R., Sakuraba, Y., Shiomi, J., Hono, K., Uchida, K.-i.: Observation of anomalous Ettingshausen effect and large transverse thermoelectric conductivity in permanent magnets. Applied Physics Letters 115(22), 222403 (2019) Nagasawa et al. [2022] Nagasawa, R., Oyanagi, K., Hirai, T., Modak, R., Kobayashi, S., Uchida, K.-i.: Anomalous Ettingshausen effect in iron–carbon alloys. Applied Physics Letters 121(6), 062401 (2022) Miura et al. [2020] Miura, A., Iguchi, R., Seki, T., Takanashi, K., Uchida, K.-i.: Spin-mediated charge-to-heat current conversion phenomena in ferromagnetic binary alloys. Physical Review Materials 4(3), 034409 (2020) Uchida et al. [2018] Uchida, K.-i., Daimon, S., Iguchi, R., Saitoh, E.: Observation of anisotropic magneto-Peltier effect in nickel. Nature 558(7708), 95–99 (2018) Menges et al. [2016] Menges, F., Mensch, P., Schmid, H., Riel, H., Stemmer, A., Gotsmann, B.: Temperature mapping of operating nanoscale devices by scanning probe thermometry. Nature Communications 7(1), 10874 (2016) Harzheim et al. [2018] Harzheim, A., Spiece, J., Evangeli, C., McCann, E., Falko, V., Sheng, Y., Warner, J.H., Briggs, G.A.D., Mol, J.A., Gehring, P., et al.: Geometrically enhanced thermoelectric effects in graphene nanoconstrictions. Nano Letters 18(12), 7719–7725 (2018) Spiece et al. [2018] Spiece, J., Evangeli, C., Lulla, K., Robson, A., Robinson, B., Kolosov, O.: Improving accuracy of nanothermal measurements via spatially distributed scanning thermal microscope probes. Journal of Applied Physics 124(1), 015101 (2018) Das et al. [2019] Das, R., Iguchi, R., Uchida, K.-i.: Systematic investigation of anisotropic magneto–peltier effect and anomalous ettingshausen effect in Ni thin films. Physical Review Applied 11(3), 034022 (2019) Miura et al. [2020] Miura, A., Masuda, K., Hirai, T., Iguchi, R., Seki, T., Miura, Y., Tsuchiura, H., Takanashi, K., Uchida, K.-i.: High-temperature dependence of anomalous Ettingshausen effect in SmCo55{}_{5}start_FLOATSUBSCRIPT 5 end_FLOATSUBSCRIPT-type permanent magnets. Applied Physics Letters 117(8), 082408 (2020) Hu et al. [2022] Hu, J., Zhang, Y., Huo, X., Li, N., Liu, S., Yu, D., Ansermet, J.-P., Granville, S., Yu, H.: Large Anomalous Nernst Angle in Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa Thin Film. IEEE Magnetics Letters 13, 1–5 (2022) Seki et al. [2018] Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Nagasawa, R., Oyanagi, K., Hirai, T., Modak, R., Kobayashi, S., Uchida, K.-i.: Anomalous Ettingshausen effect in iron–carbon alloys. Applied Physics Letters 121(6), 062401 (2022) Miura et al. [2020] Miura, A., Iguchi, R., Seki, T., Takanashi, K., Uchida, K.-i.: Spin-mediated charge-to-heat current conversion phenomena in ferromagnetic binary alloys. Physical Review Materials 4(3), 034409 (2020) Uchida et al. [2018] Uchida, K.-i., Daimon, S., Iguchi, R., Saitoh, E.: Observation of anisotropic magneto-Peltier effect in nickel. Nature 558(7708), 95–99 (2018) Menges et al. [2016] Menges, F., Mensch, P., Schmid, H., Riel, H., Stemmer, A., Gotsmann, B.: Temperature mapping of operating nanoscale devices by scanning probe thermometry. Nature Communications 7(1), 10874 (2016) Harzheim et al. [2018] Harzheim, A., Spiece, J., Evangeli, C., McCann, E., Falko, V., Sheng, Y., Warner, J.H., Briggs, G.A.D., Mol, J.A., Gehring, P., et al.: Geometrically enhanced thermoelectric effects in graphene nanoconstrictions. Nano Letters 18(12), 7719–7725 (2018) Spiece et al. [2018] Spiece, J., Evangeli, C., Lulla, K., Robson, A., Robinson, B., Kolosov, O.: Improving accuracy of nanothermal measurements via spatially distributed scanning thermal microscope probes. Journal of Applied Physics 124(1), 015101 (2018) Das et al. [2019] Das, R., Iguchi, R., Uchida, K.-i.: Systematic investigation of anisotropic magneto–peltier effect and anomalous ettingshausen effect in Ni thin films. Physical Review Applied 11(3), 034022 (2019) Miura et al. [2020] Miura, A., Masuda, K., Hirai, T., Iguchi, R., Seki, T., Miura, Y., Tsuchiura, H., Takanashi, K., Uchida, K.-i.: High-temperature dependence of anomalous Ettingshausen effect in SmCo55{}_{5}start_FLOATSUBSCRIPT 5 end_FLOATSUBSCRIPT-type permanent magnets. Applied Physics Letters 117(8), 082408 (2020) Hu et al. [2022] Hu, J., Zhang, Y., Huo, X., Li, N., Liu, S., Yu, D., Ansermet, J.-P., Granville, S., Yu, H.: Large Anomalous Nernst Angle in Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa Thin Film. IEEE Magnetics Letters 13, 1–5 (2022) Seki et al. [2018] Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Miura, A., Iguchi, R., Seki, T., Takanashi, K., Uchida, K.-i.: Spin-mediated charge-to-heat current conversion phenomena in ferromagnetic binary alloys. Physical Review Materials 4(3), 034409 (2020) Uchida et al. [2018] Uchida, K.-i., Daimon, S., Iguchi, R., Saitoh, E.: Observation of anisotropic magneto-Peltier effect in nickel. Nature 558(7708), 95–99 (2018) Menges et al. [2016] Menges, F., Mensch, P., Schmid, H., Riel, H., Stemmer, A., Gotsmann, B.: Temperature mapping of operating nanoscale devices by scanning probe thermometry. Nature Communications 7(1), 10874 (2016) Harzheim et al. [2018] Harzheim, A., Spiece, J., Evangeli, C., McCann, E., Falko, V., Sheng, Y., Warner, J.H., Briggs, G.A.D., Mol, J.A., Gehring, P., et al.: Geometrically enhanced thermoelectric effects in graphene nanoconstrictions. Nano Letters 18(12), 7719–7725 (2018) Spiece et al. [2018] Spiece, J., Evangeli, C., Lulla, K., Robson, A., Robinson, B., Kolosov, O.: Improving accuracy of nanothermal measurements via spatially distributed scanning thermal microscope probes. Journal of Applied Physics 124(1), 015101 (2018) Das et al. [2019] Das, R., Iguchi, R., Uchida, K.-i.: Systematic investigation of anisotropic magneto–peltier effect and anomalous ettingshausen effect in Ni thin films. Physical Review Applied 11(3), 034022 (2019) Miura et al. [2020] Miura, A., Masuda, K., Hirai, T., Iguchi, R., Seki, T., Miura, Y., Tsuchiura, H., Takanashi, K., Uchida, K.-i.: High-temperature dependence of anomalous Ettingshausen effect in SmCo55{}_{5}start_FLOATSUBSCRIPT 5 end_FLOATSUBSCRIPT-type permanent magnets. Applied Physics Letters 117(8), 082408 (2020) Hu et al. [2022] Hu, J., Zhang, Y., Huo, X., Li, N., Liu, S., Yu, D., Ansermet, J.-P., Granville, S., Yu, H.: Large Anomalous Nernst Angle in Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa Thin Film. IEEE Magnetics Letters 13, 1–5 (2022) Seki et al. [2018] Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Uchida, K.-i., Daimon, S., Iguchi, R., Saitoh, E.: Observation of anisotropic magneto-Peltier effect in nickel. Nature 558(7708), 95–99 (2018) Menges et al. [2016] Menges, F., Mensch, P., Schmid, H., Riel, H., Stemmer, A., Gotsmann, B.: Temperature mapping of operating nanoscale devices by scanning probe thermometry. Nature Communications 7(1), 10874 (2016) Harzheim et al. [2018] Harzheim, A., Spiece, J., Evangeli, C., McCann, E., Falko, V., Sheng, Y., Warner, J.H., Briggs, G.A.D., Mol, J.A., Gehring, P., et al.: Geometrically enhanced thermoelectric effects in graphene nanoconstrictions. Nano Letters 18(12), 7719–7725 (2018) Spiece et al. [2018] Spiece, J., Evangeli, C., Lulla, K., Robson, A., Robinson, B., Kolosov, O.: Improving accuracy of nanothermal measurements via spatially distributed scanning thermal microscope probes. Journal of Applied Physics 124(1), 015101 (2018) Das et al. [2019] Das, R., Iguchi, R., Uchida, K.-i.: Systematic investigation of anisotropic magneto–peltier effect and anomalous ettingshausen effect in Ni thin films. Physical Review Applied 11(3), 034022 (2019) Miura et al. [2020] Miura, A., Masuda, K., Hirai, T., Iguchi, R., Seki, T., Miura, Y., Tsuchiura, H., Takanashi, K., Uchida, K.-i.: High-temperature dependence of anomalous Ettingshausen effect in SmCo55{}_{5}start_FLOATSUBSCRIPT 5 end_FLOATSUBSCRIPT-type permanent magnets. Applied Physics Letters 117(8), 082408 (2020) Hu et al. [2022] Hu, J., Zhang, Y., Huo, X., Li, N., Liu, S., Yu, D., Ansermet, J.-P., Granville, S., Yu, H.: Large Anomalous Nernst Angle in Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa Thin Film. IEEE Magnetics Letters 13, 1–5 (2022) Seki et al. [2018] Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Menges, F., Mensch, P., Schmid, H., Riel, H., Stemmer, A., Gotsmann, B.: Temperature mapping of operating nanoscale devices by scanning probe thermometry. Nature Communications 7(1), 10874 (2016) Harzheim et al. [2018] Harzheim, A., Spiece, J., Evangeli, C., McCann, E., Falko, V., Sheng, Y., Warner, J.H., Briggs, G.A.D., Mol, J.A., Gehring, P., et al.: Geometrically enhanced thermoelectric effects in graphene nanoconstrictions. Nano Letters 18(12), 7719–7725 (2018) Spiece et al. [2018] Spiece, J., Evangeli, C., Lulla, K., Robson, A., Robinson, B., Kolosov, O.: Improving accuracy of nanothermal measurements via spatially distributed scanning thermal microscope probes. Journal of Applied Physics 124(1), 015101 (2018) Das et al. [2019] Das, R., Iguchi, R., Uchida, K.-i.: Systematic investigation of anisotropic magneto–peltier effect and anomalous ettingshausen effect in Ni thin films. Physical Review Applied 11(3), 034022 (2019) Miura et al. [2020] Miura, A., Masuda, K., Hirai, T., Iguchi, R., Seki, T., Miura, Y., Tsuchiura, H., Takanashi, K., Uchida, K.-i.: High-temperature dependence of anomalous Ettingshausen effect in SmCo55{}_{5}start_FLOATSUBSCRIPT 5 end_FLOATSUBSCRIPT-type permanent magnets. Applied Physics Letters 117(8), 082408 (2020) Hu et al. [2022] Hu, J., Zhang, Y., Huo, X., Li, N., Liu, S., Yu, D., Ansermet, J.-P., Granville, S., Yu, H.: Large Anomalous Nernst Angle in Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa Thin Film. IEEE Magnetics Letters 13, 1–5 (2022) Seki et al. [2018] Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Harzheim, A., Spiece, J., Evangeli, C., McCann, E., Falko, V., Sheng, Y., Warner, J.H., Briggs, G.A.D., Mol, J.A., Gehring, P., et al.: Geometrically enhanced thermoelectric effects in graphene nanoconstrictions. Nano Letters 18(12), 7719–7725 (2018) Spiece et al. [2018] Spiece, J., Evangeli, C., Lulla, K., Robson, A., Robinson, B., Kolosov, O.: Improving accuracy of nanothermal measurements via spatially distributed scanning thermal microscope probes. Journal of Applied Physics 124(1), 015101 (2018) Das et al. [2019] Das, R., Iguchi, R., Uchida, K.-i.: Systematic investigation of anisotropic magneto–peltier effect and anomalous ettingshausen effect in Ni thin films. Physical Review Applied 11(3), 034022 (2019) Miura et al. [2020] Miura, A., Masuda, K., Hirai, T., Iguchi, R., Seki, T., Miura, Y., Tsuchiura, H., Takanashi, K., Uchida, K.-i.: High-temperature dependence of anomalous Ettingshausen effect in SmCo55{}_{5}start_FLOATSUBSCRIPT 5 end_FLOATSUBSCRIPT-type permanent magnets. Applied Physics Letters 117(8), 082408 (2020) Hu et al. [2022] Hu, J., Zhang, Y., Huo, X., Li, N., Liu, S., Yu, D., Ansermet, J.-P., Granville, S., Yu, H.: Large Anomalous Nernst Angle in Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa Thin Film. IEEE Magnetics Letters 13, 1–5 (2022) Seki et al. [2018] Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Spiece, J., Evangeli, C., Lulla, K., Robson, A., Robinson, B., Kolosov, O.: Improving accuracy of nanothermal measurements via spatially distributed scanning thermal microscope probes. Journal of Applied Physics 124(1), 015101 (2018) Das et al. [2019] Das, R., Iguchi, R., Uchida, K.-i.: Systematic investigation of anisotropic magneto–peltier effect and anomalous ettingshausen effect in Ni thin films. Physical Review Applied 11(3), 034022 (2019) Miura et al. [2020] Miura, A., Masuda, K., Hirai, T., Iguchi, R., Seki, T., Miura, Y., Tsuchiura, H., Takanashi, K., Uchida, K.-i.: High-temperature dependence of anomalous Ettingshausen effect in SmCo55{}_{5}start_FLOATSUBSCRIPT 5 end_FLOATSUBSCRIPT-type permanent magnets. Applied Physics Letters 117(8), 082408 (2020) Hu et al. [2022] Hu, J., Zhang, Y., Huo, X., Li, N., Liu, S., Yu, D., Ansermet, J.-P., Granville, S., Yu, H.: Large Anomalous Nernst Angle in Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa Thin Film. IEEE Magnetics Letters 13, 1–5 (2022) Seki et al. [2018] Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Das, R., Iguchi, R., Uchida, K.-i.: Systematic investigation of anisotropic magneto–peltier effect and anomalous ettingshausen effect in Ni thin films. Physical Review Applied 11(3), 034022 (2019) Miura et al. [2020] Miura, A., Masuda, K., Hirai, T., Iguchi, R., Seki, T., Miura, Y., Tsuchiura, H., Takanashi, K., Uchida, K.-i.: High-temperature dependence of anomalous Ettingshausen effect in SmCo55{}_{5}start_FLOATSUBSCRIPT 5 end_FLOATSUBSCRIPT-type permanent magnets. Applied Physics Letters 117(8), 082408 (2020) Hu et al. [2022] Hu, J., Zhang, Y., Huo, X., Li, N., Liu, S., Yu, D., Ansermet, J.-P., Granville, S., Yu, H.: Large Anomalous Nernst Angle in Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa Thin Film. IEEE Magnetics Letters 13, 1–5 (2022) Seki et al. [2018] Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Miura, A., Masuda, K., Hirai, T., Iguchi, R., Seki, T., Miura, Y., Tsuchiura, H., Takanashi, K., Uchida, K.-i.: High-temperature dependence of anomalous Ettingshausen effect in SmCo55{}_{5}start_FLOATSUBSCRIPT 5 end_FLOATSUBSCRIPT-type permanent magnets. Applied Physics Letters 117(8), 082408 (2020) Hu et al. [2022] Hu, J., Zhang, Y., Huo, X., Li, N., Liu, S., Yu, D., Ansermet, J.-P., Granville, S., Yu, H.: Large Anomalous Nernst Angle in Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa Thin Film. IEEE Magnetics Letters 13, 1–5 (2022) Seki et al. [2018] Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Hu, J., Zhang, Y., Huo, X., Li, N., Liu, S., Yu, D., Ansermet, J.-P., Granville, S., Yu, H.: Large Anomalous Nernst Angle in Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa Thin Film. IEEE Magnetics Letters 13, 1–5 (2022) Seki et al. [2018] Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1
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[2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Zhang, Y., Yin, Y., Dubuis, G., Butler, T., Medhekar, N.V., Granville, S.: Berry curvature origin of the thickness-dependent anomalous Hall effect in a ferromagnetic Weyl semimetal. npj Quantum Materials 6(1), 17 (2021) Miura et al. [2019] Miura, A., Sepehri-Amin, H., Masuda, K., Tsuchiura, H., Miura, Y., Iguchi, R., Sakuraba, Y., Shiomi, J., Hono, K., Uchida, K.-i.: Observation of anomalous Ettingshausen effect and large transverse thermoelectric conductivity in permanent magnets. Applied Physics Letters 115(22), 222403 (2019) Nagasawa et al. [2022] Nagasawa, R., Oyanagi, K., Hirai, T., Modak, R., Kobayashi, S., Uchida, K.-i.: Anomalous Ettingshausen effect in iron–carbon alloys. Applied Physics Letters 121(6), 062401 (2022) Miura et al. [2020] Miura, A., Iguchi, R., Seki, T., Takanashi, K., Uchida, K.-i.: Spin-mediated charge-to-heat current conversion phenomena in ferromagnetic binary alloys. Physical Review Materials 4(3), 034409 (2020) Uchida et al. [2018] Uchida, K.-i., Daimon, S., Iguchi, R., Saitoh, E.: Observation of anisotropic magneto-Peltier effect in nickel. Nature 558(7708), 95–99 (2018) Menges et al. [2016] Menges, F., Mensch, P., Schmid, H., Riel, H., Stemmer, A., Gotsmann, B.: Temperature mapping of operating nanoscale devices by scanning probe thermometry. Nature Communications 7(1), 10874 (2016) Harzheim et al. [2018] Harzheim, A., Spiece, J., Evangeli, C., McCann, E., Falko, V., Sheng, Y., Warner, J.H., Briggs, G.A.D., Mol, J.A., Gehring, P., et al.: Geometrically enhanced thermoelectric effects in graphene nanoconstrictions. Nano Letters 18(12), 7719–7725 (2018) Spiece et al. [2018] Spiece, J., Evangeli, C., Lulla, K., Robson, A., Robinson, B., Kolosov, O.: Improving accuracy of nanothermal measurements via spatially distributed scanning thermal microscope probes. Journal of Applied Physics 124(1), 015101 (2018) Das et al. [2019] Das, R., Iguchi, R., Uchida, K.-i.: Systematic investigation of anisotropic magneto–peltier effect and anomalous ettingshausen effect in Ni thin films. Physical Review Applied 11(3), 034022 (2019) Miura et al. [2020] Miura, A., Masuda, K., Hirai, T., Iguchi, R., Seki, T., Miura, Y., Tsuchiura, H., Takanashi, K., Uchida, K.-i.: High-temperature dependence of anomalous Ettingshausen effect in SmCo55{}_{5}start_FLOATSUBSCRIPT 5 end_FLOATSUBSCRIPT-type permanent magnets. Applied Physics Letters 117(8), 082408 (2020) Hu et al. [2022] Hu, J., Zhang, Y., Huo, X., Li, N., Liu, S., Yu, D., Ansermet, J.-P., Granville, S., Yu, H.: Large Anomalous Nernst Angle in Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa Thin Film. IEEE Magnetics Letters 13, 1–5 (2022) Seki et al. [2018] Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Miura, A., Sepehri-Amin, H., Masuda, K., Tsuchiura, H., Miura, Y., Iguchi, R., Sakuraba, Y., Shiomi, J., Hono, K., Uchida, K.-i.: Observation of anomalous Ettingshausen effect and large transverse thermoelectric conductivity in permanent magnets. Applied Physics Letters 115(22), 222403 (2019) Nagasawa et al. [2022] Nagasawa, R., Oyanagi, K., Hirai, T., Modak, R., Kobayashi, S., Uchida, K.-i.: Anomalous Ettingshausen effect in iron–carbon alloys. Applied Physics Letters 121(6), 062401 (2022) Miura et al. [2020] Miura, A., Iguchi, R., Seki, T., Takanashi, K., Uchida, K.-i.: Spin-mediated charge-to-heat current conversion phenomena in ferromagnetic binary alloys. Physical Review Materials 4(3), 034409 (2020) Uchida et al. [2018] Uchida, K.-i., Daimon, S., Iguchi, R., Saitoh, E.: Observation of anisotropic magneto-Peltier effect in nickel. Nature 558(7708), 95–99 (2018) Menges et al. [2016] Menges, F., Mensch, P., Schmid, H., Riel, H., Stemmer, A., Gotsmann, B.: Temperature mapping of operating nanoscale devices by scanning probe thermometry. Nature Communications 7(1), 10874 (2016) Harzheim et al. [2018] Harzheim, A., Spiece, J., Evangeli, C., McCann, E., Falko, V., Sheng, Y., Warner, J.H., Briggs, G.A.D., Mol, J.A., Gehring, P., et al.: Geometrically enhanced thermoelectric effects in graphene nanoconstrictions. Nano Letters 18(12), 7719–7725 (2018) Spiece et al. [2018] Spiece, J., Evangeli, C., Lulla, K., Robson, A., Robinson, B., Kolosov, O.: Improving accuracy of nanothermal measurements via spatially distributed scanning thermal microscope probes. Journal of Applied Physics 124(1), 015101 (2018) Das et al. [2019] Das, R., Iguchi, R., Uchida, K.-i.: Systematic investigation of anisotropic magneto–peltier effect and anomalous ettingshausen effect in Ni thin films. Physical Review Applied 11(3), 034022 (2019) Miura et al. [2020] Miura, A., Masuda, K., Hirai, T., Iguchi, R., Seki, T., Miura, Y., Tsuchiura, H., Takanashi, K., Uchida, K.-i.: High-temperature dependence of anomalous Ettingshausen effect in SmCo55{}_{5}start_FLOATSUBSCRIPT 5 end_FLOATSUBSCRIPT-type permanent magnets. Applied Physics Letters 117(8), 082408 (2020) Hu et al. [2022] Hu, J., Zhang, Y., Huo, X., Li, N., Liu, S., Yu, D., Ansermet, J.-P., Granville, S., Yu, H.: Large Anomalous Nernst Angle in Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa Thin Film. IEEE Magnetics Letters 13, 1–5 (2022) Seki et al. [2018] Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Nagasawa, R., Oyanagi, K., Hirai, T., Modak, R., Kobayashi, S., Uchida, K.-i.: Anomalous Ettingshausen effect in iron–carbon alloys. Applied Physics Letters 121(6), 062401 (2022) Miura et al. [2020] Miura, A., Iguchi, R., Seki, T., Takanashi, K., Uchida, K.-i.: Spin-mediated charge-to-heat current conversion phenomena in ferromagnetic binary alloys. Physical Review Materials 4(3), 034409 (2020) Uchida et al. [2018] Uchida, K.-i., Daimon, S., Iguchi, R., Saitoh, E.: Observation of anisotropic magneto-Peltier effect in nickel. Nature 558(7708), 95–99 (2018) Menges et al. [2016] Menges, F., Mensch, P., Schmid, H., Riel, H., Stemmer, A., Gotsmann, B.: Temperature mapping of operating nanoscale devices by scanning probe thermometry. Nature Communications 7(1), 10874 (2016) Harzheim et al. [2018] Harzheim, A., Spiece, J., Evangeli, C., McCann, E., Falko, V., Sheng, Y., Warner, J.H., Briggs, G.A.D., Mol, J.A., Gehring, P., et al.: Geometrically enhanced thermoelectric effects in graphene nanoconstrictions. Nano Letters 18(12), 7719–7725 (2018) Spiece et al. [2018] Spiece, J., Evangeli, C., Lulla, K., Robson, A., Robinson, B., Kolosov, O.: Improving accuracy of nanothermal measurements via spatially distributed scanning thermal microscope probes. Journal of Applied Physics 124(1), 015101 (2018) Das et al. [2019] Das, R., Iguchi, R., Uchida, K.-i.: Systematic investigation of anisotropic magneto–peltier effect and anomalous ettingshausen effect in Ni thin films. Physical Review Applied 11(3), 034022 (2019) Miura et al. [2020] Miura, A., Masuda, K., Hirai, T., Iguchi, R., Seki, T., Miura, Y., Tsuchiura, H., Takanashi, K., Uchida, K.-i.: High-temperature dependence of anomalous Ettingshausen effect in SmCo55{}_{5}start_FLOATSUBSCRIPT 5 end_FLOATSUBSCRIPT-type permanent magnets. Applied Physics Letters 117(8), 082408 (2020) Hu et al. [2022] Hu, J., Zhang, Y., Huo, X., Li, N., Liu, S., Yu, D., Ansermet, J.-P., Granville, S., Yu, H.: Large Anomalous Nernst Angle in Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa Thin Film. IEEE Magnetics Letters 13, 1–5 (2022) Seki et al. [2018] Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Miura, A., Iguchi, R., Seki, T., Takanashi, K., Uchida, K.-i.: Spin-mediated charge-to-heat current conversion phenomena in ferromagnetic binary alloys. Physical Review Materials 4(3), 034409 (2020) Uchida et al. [2018] Uchida, K.-i., Daimon, S., Iguchi, R., Saitoh, E.: Observation of anisotropic magneto-Peltier effect in nickel. Nature 558(7708), 95–99 (2018) Menges et al. [2016] Menges, F., Mensch, P., Schmid, H., Riel, H., Stemmer, A., Gotsmann, B.: Temperature mapping of operating nanoscale devices by scanning probe thermometry. Nature Communications 7(1), 10874 (2016) Harzheim et al. [2018] Harzheim, A., Spiece, J., Evangeli, C., McCann, E., Falko, V., Sheng, Y., Warner, J.H., Briggs, G.A.D., Mol, J.A., Gehring, P., et al.: Geometrically enhanced thermoelectric effects in graphene nanoconstrictions. Nano Letters 18(12), 7719–7725 (2018) Spiece et al. [2018] Spiece, J., Evangeli, C., Lulla, K., Robson, A., Robinson, B., Kolosov, O.: Improving accuracy of nanothermal measurements via spatially distributed scanning thermal microscope probes. Journal of Applied Physics 124(1), 015101 (2018) Das et al. [2019] Das, R., Iguchi, R., Uchida, K.-i.: Systematic investigation of anisotropic magneto–peltier effect and anomalous ettingshausen effect in Ni thin films. Physical Review Applied 11(3), 034022 (2019) Miura et al. [2020] Miura, A., Masuda, K., Hirai, T., Iguchi, R., Seki, T., Miura, Y., Tsuchiura, H., Takanashi, K., Uchida, K.-i.: High-temperature dependence of anomalous Ettingshausen effect in SmCo55{}_{5}start_FLOATSUBSCRIPT 5 end_FLOATSUBSCRIPT-type permanent magnets. Applied Physics Letters 117(8), 082408 (2020) Hu et al. [2022] Hu, J., Zhang, Y., Huo, X., Li, N., Liu, S., Yu, D., Ansermet, J.-P., Granville, S., Yu, H.: Large Anomalous Nernst Angle in Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa Thin Film. IEEE Magnetics Letters 13, 1–5 (2022) Seki et al. [2018] Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Uchida, K.-i., Daimon, S., Iguchi, R., Saitoh, E.: Observation of anisotropic magneto-Peltier effect in nickel. Nature 558(7708), 95–99 (2018) Menges et al. [2016] Menges, F., Mensch, P., Schmid, H., Riel, H., Stemmer, A., Gotsmann, B.: Temperature mapping of operating nanoscale devices by scanning probe thermometry. Nature Communications 7(1), 10874 (2016) Harzheim et al. [2018] Harzheim, A., Spiece, J., Evangeli, C., McCann, E., Falko, V., Sheng, Y., Warner, J.H., Briggs, G.A.D., Mol, J.A., Gehring, P., et al.: Geometrically enhanced thermoelectric effects in graphene nanoconstrictions. Nano Letters 18(12), 7719–7725 (2018) Spiece et al. [2018] Spiece, J., Evangeli, C., Lulla, K., Robson, A., Robinson, B., Kolosov, O.: Improving accuracy of nanothermal measurements via spatially distributed scanning thermal microscope probes. Journal of Applied Physics 124(1), 015101 (2018) Das et al. [2019] Das, R., Iguchi, R., Uchida, K.-i.: Systematic investigation of anisotropic magneto–peltier effect and anomalous ettingshausen effect in Ni thin films. Physical Review Applied 11(3), 034022 (2019) Miura et al. [2020] Miura, A., Masuda, K., Hirai, T., Iguchi, R., Seki, T., Miura, Y., Tsuchiura, H., Takanashi, K., Uchida, K.-i.: High-temperature dependence of anomalous Ettingshausen effect in SmCo55{}_{5}start_FLOATSUBSCRIPT 5 end_FLOATSUBSCRIPT-type permanent magnets. Applied Physics Letters 117(8), 082408 (2020) Hu et al. [2022] Hu, J., Zhang, Y., Huo, X., Li, N., Liu, S., Yu, D., Ansermet, J.-P., Granville, S., Yu, H.: Large Anomalous Nernst Angle in Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa Thin Film. IEEE Magnetics Letters 13, 1–5 (2022) Seki et al. [2018] Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Menges, F., Mensch, P., Schmid, H., Riel, H., Stemmer, A., Gotsmann, B.: Temperature mapping of operating nanoscale devices by scanning probe thermometry. Nature Communications 7(1), 10874 (2016) Harzheim et al. [2018] Harzheim, A., Spiece, J., Evangeli, C., McCann, E., Falko, V., Sheng, Y., Warner, J.H., Briggs, G.A.D., Mol, J.A., Gehring, P., et al.: Geometrically enhanced thermoelectric effects in graphene nanoconstrictions. Nano Letters 18(12), 7719–7725 (2018) Spiece et al. [2018] Spiece, J., Evangeli, C., Lulla, K., Robson, A., Robinson, B., Kolosov, O.: Improving accuracy of nanothermal measurements via spatially distributed scanning thermal microscope probes. Journal of Applied Physics 124(1), 015101 (2018) Das et al. [2019] Das, R., Iguchi, R., Uchida, K.-i.: Systematic investigation of anisotropic magneto–peltier effect and anomalous ettingshausen effect in Ni thin films. Physical Review Applied 11(3), 034022 (2019) Miura et al. [2020] Miura, A., Masuda, K., Hirai, T., Iguchi, R., Seki, T., Miura, Y., Tsuchiura, H., Takanashi, K., Uchida, K.-i.: High-temperature dependence of anomalous Ettingshausen effect in SmCo55{}_{5}start_FLOATSUBSCRIPT 5 end_FLOATSUBSCRIPT-type permanent magnets. Applied Physics Letters 117(8), 082408 (2020) Hu et al. [2022] Hu, J., Zhang, Y., Huo, X., Li, N., Liu, S., Yu, D., Ansermet, J.-P., Granville, S., Yu, H.: Large Anomalous Nernst Angle in Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa Thin Film. IEEE Magnetics Letters 13, 1–5 (2022) Seki et al. [2018] Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Harzheim, A., Spiece, J., Evangeli, C., McCann, E., Falko, V., Sheng, Y., Warner, J.H., Briggs, G.A.D., Mol, J.A., Gehring, P., et al.: Geometrically enhanced thermoelectric effects in graphene nanoconstrictions. Nano Letters 18(12), 7719–7725 (2018) Spiece et al. [2018] Spiece, J., Evangeli, C., Lulla, K., Robson, A., Robinson, B., Kolosov, O.: Improving accuracy of nanothermal measurements via spatially distributed scanning thermal microscope probes. Journal of Applied Physics 124(1), 015101 (2018) Das et al. [2019] Das, R., Iguchi, R., Uchida, K.-i.: Systematic investigation of anisotropic magneto–peltier effect and anomalous ettingshausen effect in Ni thin films. Physical Review Applied 11(3), 034022 (2019) Miura et al. [2020] Miura, A., Masuda, K., Hirai, T., Iguchi, R., Seki, T., Miura, Y., Tsuchiura, H., Takanashi, K., Uchida, K.-i.: High-temperature dependence of anomalous Ettingshausen effect in SmCo55{}_{5}start_FLOATSUBSCRIPT 5 end_FLOATSUBSCRIPT-type permanent magnets. Applied Physics Letters 117(8), 082408 (2020) Hu et al. [2022] Hu, J., Zhang, Y., Huo, X., Li, N., Liu, S., Yu, D., Ansermet, J.-P., Granville, S., Yu, H.: Large Anomalous Nernst Angle in Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa Thin Film. IEEE Magnetics Letters 13, 1–5 (2022) Seki et al. [2018] Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Spiece, J., Evangeli, C., Lulla, K., Robson, A., Robinson, B., Kolosov, O.: Improving accuracy of nanothermal measurements via spatially distributed scanning thermal microscope probes. Journal of Applied Physics 124(1), 015101 (2018) Das et al. [2019] Das, R., Iguchi, R., Uchida, K.-i.: Systematic investigation of anisotropic magneto–peltier effect and anomalous ettingshausen effect in Ni thin films. Physical Review Applied 11(3), 034022 (2019) Miura et al. [2020] Miura, A., Masuda, K., Hirai, T., Iguchi, R., Seki, T., Miura, Y., Tsuchiura, H., Takanashi, K., Uchida, K.-i.: High-temperature dependence of anomalous Ettingshausen effect in SmCo55{}_{5}start_FLOATSUBSCRIPT 5 end_FLOATSUBSCRIPT-type permanent magnets. Applied Physics Letters 117(8), 082408 (2020) Hu et al. [2022] Hu, J., Zhang, Y., Huo, X., Li, N., Liu, S., Yu, D., Ansermet, J.-P., Granville, S., Yu, H.: Large Anomalous Nernst Angle in Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa Thin Film. IEEE Magnetics Letters 13, 1–5 (2022) Seki et al. [2018] Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Das, R., Iguchi, R., Uchida, K.-i.: Systematic investigation of anisotropic magneto–peltier effect and anomalous ettingshausen effect in Ni thin films. Physical Review Applied 11(3), 034022 (2019) Miura et al. [2020] Miura, A., Masuda, K., Hirai, T., Iguchi, R., Seki, T., Miura, Y., Tsuchiura, H., Takanashi, K., Uchida, K.-i.: High-temperature dependence of anomalous Ettingshausen effect in SmCo55{}_{5}start_FLOATSUBSCRIPT 5 end_FLOATSUBSCRIPT-type permanent magnets. Applied Physics Letters 117(8), 082408 (2020) Hu et al. [2022] Hu, J., Zhang, Y., Huo, X., Li, N., Liu, S., Yu, D., Ansermet, J.-P., Granville, S., Yu, H.: Large Anomalous Nernst Angle in Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa Thin Film. IEEE Magnetics Letters 13, 1–5 (2022) Seki et al. [2018] Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Miura, A., Masuda, K., Hirai, T., Iguchi, R., Seki, T., Miura, Y., Tsuchiura, H., Takanashi, K., Uchida, K.-i.: High-temperature dependence of anomalous Ettingshausen effect in SmCo55{}_{5}start_FLOATSUBSCRIPT 5 end_FLOATSUBSCRIPT-type permanent magnets. Applied Physics Letters 117(8), 082408 (2020) Hu et al. [2022] Hu, J., Zhang, Y., Huo, X., Li, N., Liu, S., Yu, D., Ansermet, J.-P., Granville, S., Yu, H.: Large Anomalous Nernst Angle in Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa Thin Film. IEEE Magnetics Letters 13, 1–5 (2022) Seki et al. [2018] Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Hu, J., Zhang, Y., Huo, X., Li, N., Liu, S., Yu, D., Ansermet, J.-P., Granville, S., Yu, H.: Large Anomalous Nernst Angle in Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa Thin Film. IEEE Magnetics Letters 13, 1–5 (2022) Seki et al. [2018] Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1
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Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Miura, A., Sepehri-Amin, H., Masuda, K., Tsuchiura, H., Miura, Y., Iguchi, R., Sakuraba, Y., Shiomi, J., Hono, K., Uchida, K.-i.: Observation of anomalous Ettingshausen effect and large transverse thermoelectric conductivity in permanent magnets. Applied Physics Letters 115(22), 222403 (2019) Nagasawa et al. [2022] Nagasawa, R., Oyanagi, K., Hirai, T., Modak, R., Kobayashi, S., Uchida, K.-i.: Anomalous Ettingshausen effect in iron–carbon alloys. Applied Physics Letters 121(6), 062401 (2022) Miura et al. [2020] Miura, A., Iguchi, R., Seki, T., Takanashi, K., Uchida, K.-i.: Spin-mediated charge-to-heat current conversion phenomena in ferromagnetic binary alloys. Physical Review Materials 4(3), 034409 (2020) Uchida et al. [2018] Uchida, K.-i., Daimon, S., Iguchi, R., Saitoh, E.: Observation of anisotropic magneto-Peltier effect in nickel. Nature 558(7708), 95–99 (2018) Menges et al. [2016] Menges, F., Mensch, P., Schmid, H., Riel, H., Stemmer, A., Gotsmann, B.: Temperature mapping of operating nanoscale devices by scanning probe thermometry. Nature Communications 7(1), 10874 (2016) Harzheim et al. [2018] Harzheim, A., Spiece, J., Evangeli, C., McCann, E., Falko, V., Sheng, Y., Warner, J.H., Briggs, G.A.D., Mol, J.A., Gehring, P., et al.: Geometrically enhanced thermoelectric effects in graphene nanoconstrictions. Nano Letters 18(12), 7719–7725 (2018) Spiece et al. [2018] Spiece, J., Evangeli, C., Lulla, K., Robson, A., Robinson, B., Kolosov, O.: Improving accuracy of nanothermal measurements via spatially distributed scanning thermal microscope probes. Journal of Applied Physics 124(1), 015101 (2018) Das et al. [2019] Das, R., Iguchi, R., Uchida, K.-i.: Systematic investigation of anisotropic magneto–peltier effect and anomalous ettingshausen effect in Ni thin films. Physical Review Applied 11(3), 034022 (2019) Miura et al. [2020] Miura, A., Masuda, K., Hirai, T., Iguchi, R., Seki, T., Miura, Y., Tsuchiura, H., Takanashi, K., Uchida, K.-i.: High-temperature dependence of anomalous Ettingshausen effect in SmCo55{}_{5}start_FLOATSUBSCRIPT 5 end_FLOATSUBSCRIPT-type permanent magnets. Applied Physics Letters 117(8), 082408 (2020) Hu et al. [2022] Hu, J., Zhang, Y., Huo, X., Li, N., Liu, S., Yu, D., Ansermet, J.-P., Granville, S., Yu, H.: Large Anomalous Nernst Angle in Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa Thin Film. IEEE Magnetics Letters 13, 1–5 (2022) Seki et al. [2018] Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Nagasawa, R., Oyanagi, K., Hirai, T., Modak, R., Kobayashi, S., Uchida, K.-i.: Anomalous Ettingshausen effect in iron–carbon alloys. Applied Physics Letters 121(6), 062401 (2022) Miura et al. [2020] Miura, A., Iguchi, R., Seki, T., Takanashi, K., Uchida, K.-i.: Spin-mediated charge-to-heat current conversion phenomena in ferromagnetic binary alloys. Physical Review Materials 4(3), 034409 (2020) Uchida et al. [2018] Uchida, K.-i., Daimon, S., Iguchi, R., Saitoh, E.: Observation of anisotropic magneto-Peltier effect in nickel. Nature 558(7708), 95–99 (2018) Menges et al. [2016] Menges, F., Mensch, P., Schmid, H., Riel, H., Stemmer, A., Gotsmann, B.: Temperature mapping of operating nanoscale devices by scanning probe thermometry. Nature Communications 7(1), 10874 (2016) Harzheim et al. [2018] Harzheim, A., Spiece, J., Evangeli, C., McCann, E., Falko, V., Sheng, Y., Warner, J.H., Briggs, G.A.D., Mol, J.A., Gehring, P., et al.: Geometrically enhanced thermoelectric effects in graphene nanoconstrictions. Nano Letters 18(12), 7719–7725 (2018) Spiece et al. [2018] Spiece, J., Evangeli, C., Lulla, K., Robson, A., Robinson, B., Kolosov, O.: Improving accuracy of nanothermal measurements via spatially distributed scanning thermal microscope probes. Journal of Applied Physics 124(1), 015101 (2018) Das et al. [2019] Das, R., Iguchi, R., Uchida, K.-i.: Systematic investigation of anisotropic magneto–peltier effect and anomalous ettingshausen effect in Ni thin films. Physical Review Applied 11(3), 034022 (2019) Miura et al. [2020] Miura, A., Masuda, K., Hirai, T., Iguchi, R., Seki, T., Miura, Y., Tsuchiura, H., Takanashi, K., Uchida, K.-i.: High-temperature dependence of anomalous Ettingshausen effect in SmCo55{}_{5}start_FLOATSUBSCRIPT 5 end_FLOATSUBSCRIPT-type permanent magnets. Applied Physics Letters 117(8), 082408 (2020) Hu et al. [2022] Hu, J., Zhang, Y., Huo, X., Li, N., Liu, S., Yu, D., Ansermet, J.-P., Granville, S., Yu, H.: Large Anomalous Nernst Angle in Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa Thin Film. IEEE Magnetics Letters 13, 1–5 (2022) Seki et al. [2018] Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Miura, A., Iguchi, R., Seki, T., Takanashi, K., Uchida, K.-i.: Spin-mediated charge-to-heat current conversion phenomena in ferromagnetic binary alloys. Physical Review Materials 4(3), 034409 (2020) Uchida et al. [2018] Uchida, K.-i., Daimon, S., Iguchi, R., Saitoh, E.: Observation of anisotropic magneto-Peltier effect in nickel. Nature 558(7708), 95–99 (2018) Menges et al. [2016] Menges, F., Mensch, P., Schmid, H., Riel, H., Stemmer, A., Gotsmann, B.: Temperature mapping of operating nanoscale devices by scanning probe thermometry. Nature Communications 7(1), 10874 (2016) Harzheim et al. [2018] Harzheim, A., Spiece, J., Evangeli, C., McCann, E., Falko, V., Sheng, Y., Warner, J.H., Briggs, G.A.D., Mol, J.A., Gehring, P., et al.: Geometrically enhanced thermoelectric effects in graphene nanoconstrictions. Nano Letters 18(12), 7719–7725 (2018) Spiece et al. [2018] Spiece, J., Evangeli, C., Lulla, K., Robson, A., Robinson, B., Kolosov, O.: Improving accuracy of nanothermal measurements via spatially distributed scanning thermal microscope probes. Journal of Applied Physics 124(1), 015101 (2018) Das et al. [2019] Das, R., Iguchi, R., Uchida, K.-i.: Systematic investigation of anisotropic magneto–peltier effect and anomalous ettingshausen effect in Ni thin films. Physical Review Applied 11(3), 034022 (2019) Miura et al. [2020] Miura, A., Masuda, K., Hirai, T., Iguchi, R., Seki, T., Miura, Y., Tsuchiura, H., Takanashi, K., Uchida, K.-i.: High-temperature dependence of anomalous Ettingshausen effect in SmCo55{}_{5}start_FLOATSUBSCRIPT 5 end_FLOATSUBSCRIPT-type permanent magnets. Applied Physics Letters 117(8), 082408 (2020) Hu et al. [2022] Hu, J., Zhang, Y., Huo, X., Li, N., Liu, S., Yu, D., Ansermet, J.-P., Granville, S., Yu, H.: Large Anomalous Nernst Angle in Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa Thin Film. IEEE Magnetics Letters 13, 1–5 (2022) Seki et al. [2018] Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Uchida, K.-i., Daimon, S., Iguchi, R., Saitoh, E.: Observation of anisotropic magneto-Peltier effect in nickel. Nature 558(7708), 95–99 (2018) Menges et al. [2016] Menges, F., Mensch, P., Schmid, H., Riel, H., Stemmer, A., Gotsmann, B.: Temperature mapping of operating nanoscale devices by scanning probe thermometry. Nature Communications 7(1), 10874 (2016) Harzheim et al. [2018] Harzheim, A., Spiece, J., Evangeli, C., McCann, E., Falko, V., Sheng, Y., Warner, J.H., Briggs, G.A.D., Mol, J.A., Gehring, P., et al.: Geometrically enhanced thermoelectric effects in graphene nanoconstrictions. Nano Letters 18(12), 7719–7725 (2018) Spiece et al. [2018] Spiece, J., Evangeli, C., Lulla, K., Robson, A., Robinson, B., Kolosov, O.: Improving accuracy of nanothermal measurements via spatially distributed scanning thermal microscope probes. Journal of Applied Physics 124(1), 015101 (2018) Das et al. [2019] Das, R., Iguchi, R., Uchida, K.-i.: Systematic investigation of anisotropic magneto–peltier effect and anomalous ettingshausen effect in Ni thin films. Physical Review Applied 11(3), 034022 (2019) Miura et al. [2020] Miura, A., Masuda, K., Hirai, T., Iguchi, R., Seki, T., Miura, Y., Tsuchiura, H., Takanashi, K., Uchida, K.-i.: High-temperature dependence of anomalous Ettingshausen effect in SmCo55{}_{5}start_FLOATSUBSCRIPT 5 end_FLOATSUBSCRIPT-type permanent magnets. Applied Physics Letters 117(8), 082408 (2020) Hu et al. [2022] Hu, J., Zhang, Y., Huo, X., Li, N., Liu, S., Yu, D., Ansermet, J.-P., Granville, S., Yu, H.: Large Anomalous Nernst Angle in Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa Thin Film. IEEE Magnetics Letters 13, 1–5 (2022) Seki et al. [2018] Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Menges, F., Mensch, P., Schmid, H., Riel, H., Stemmer, A., Gotsmann, B.: Temperature mapping of operating nanoscale devices by scanning probe thermometry. Nature Communications 7(1), 10874 (2016) Harzheim et al. [2018] Harzheim, A., Spiece, J., Evangeli, C., McCann, E., Falko, V., Sheng, Y., Warner, J.H., Briggs, G.A.D., Mol, J.A., Gehring, P., et al.: Geometrically enhanced thermoelectric effects in graphene nanoconstrictions. Nano Letters 18(12), 7719–7725 (2018) Spiece et al. [2018] Spiece, J., Evangeli, C., Lulla, K., Robson, A., Robinson, B., Kolosov, O.: Improving accuracy of nanothermal measurements via spatially distributed scanning thermal microscope probes. Journal of Applied Physics 124(1), 015101 (2018) Das et al. [2019] Das, R., Iguchi, R., Uchida, K.-i.: Systematic investigation of anisotropic magneto–peltier effect and anomalous ettingshausen effect in Ni thin films. Physical Review Applied 11(3), 034022 (2019) Miura et al. [2020] Miura, A., Masuda, K., Hirai, T., Iguchi, R., Seki, T., Miura, Y., Tsuchiura, H., Takanashi, K., Uchida, K.-i.: High-temperature dependence of anomalous Ettingshausen effect in SmCo55{}_{5}start_FLOATSUBSCRIPT 5 end_FLOATSUBSCRIPT-type permanent magnets. Applied Physics Letters 117(8), 082408 (2020) Hu et al. [2022] Hu, J., Zhang, Y., Huo, X., Li, N., Liu, S., Yu, D., Ansermet, J.-P., Granville, S., Yu, H.: Large Anomalous Nernst Angle in Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa Thin Film. IEEE Magnetics Letters 13, 1–5 (2022) Seki et al. [2018] Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Harzheim, A., Spiece, J., Evangeli, C., McCann, E., Falko, V., Sheng, Y., Warner, J.H., Briggs, G.A.D., Mol, J.A., Gehring, P., et al.: Geometrically enhanced thermoelectric effects in graphene nanoconstrictions. Nano Letters 18(12), 7719–7725 (2018) Spiece et al. [2018] Spiece, J., Evangeli, C., Lulla, K., Robson, A., Robinson, B., Kolosov, O.: Improving accuracy of nanothermal measurements via spatially distributed scanning thermal microscope probes. Journal of Applied Physics 124(1), 015101 (2018) Das et al. [2019] Das, R., Iguchi, R., Uchida, K.-i.: Systematic investigation of anisotropic magneto–peltier effect and anomalous ettingshausen effect in Ni thin films. Physical Review Applied 11(3), 034022 (2019) Miura et al. [2020] Miura, A., Masuda, K., Hirai, T., Iguchi, R., Seki, T., Miura, Y., Tsuchiura, H., Takanashi, K., Uchida, K.-i.: High-temperature dependence of anomalous Ettingshausen effect in SmCo55{}_{5}start_FLOATSUBSCRIPT 5 end_FLOATSUBSCRIPT-type permanent magnets. Applied Physics Letters 117(8), 082408 (2020) Hu et al. [2022] Hu, J., Zhang, Y., Huo, X., Li, N., Liu, S., Yu, D., Ansermet, J.-P., Granville, S., Yu, H.: Large Anomalous Nernst Angle in Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa Thin Film. IEEE Magnetics Letters 13, 1–5 (2022) Seki et al. [2018] Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Spiece, J., Evangeli, C., Lulla, K., Robson, A., Robinson, B., Kolosov, O.: Improving accuracy of nanothermal measurements via spatially distributed scanning thermal microscope probes. Journal of Applied Physics 124(1), 015101 (2018) Das et al. [2019] Das, R., Iguchi, R., Uchida, K.-i.: Systematic investigation of anisotropic magneto–peltier effect and anomalous ettingshausen effect in Ni thin films. Physical Review Applied 11(3), 034022 (2019) Miura et al. [2020] Miura, A., Masuda, K., Hirai, T., Iguchi, R., Seki, T., Miura, Y., Tsuchiura, H., Takanashi, K., Uchida, K.-i.: High-temperature dependence of anomalous Ettingshausen effect in SmCo55{}_{5}start_FLOATSUBSCRIPT 5 end_FLOATSUBSCRIPT-type permanent magnets. Applied Physics Letters 117(8), 082408 (2020) Hu et al. [2022] Hu, J., Zhang, Y., Huo, X., Li, N., Liu, S., Yu, D., Ansermet, J.-P., Granville, S., Yu, H.: Large Anomalous Nernst Angle in Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa Thin Film. IEEE Magnetics Letters 13, 1–5 (2022) Seki et al. [2018] Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Das, R., Iguchi, R., Uchida, K.-i.: Systematic investigation of anisotropic magneto–peltier effect and anomalous ettingshausen effect in Ni thin films. Physical Review Applied 11(3), 034022 (2019) Miura et al. [2020] Miura, A., Masuda, K., Hirai, T., Iguchi, R., Seki, T., Miura, Y., Tsuchiura, H., Takanashi, K., Uchida, K.-i.: High-temperature dependence of anomalous Ettingshausen effect in SmCo55{}_{5}start_FLOATSUBSCRIPT 5 end_FLOATSUBSCRIPT-type permanent magnets. Applied Physics Letters 117(8), 082408 (2020) Hu et al. [2022] Hu, J., Zhang, Y., Huo, X., Li, N., Liu, S., Yu, D., Ansermet, J.-P., Granville, S., Yu, H.: Large Anomalous Nernst Angle in Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa Thin Film. IEEE Magnetics Letters 13, 1–5 (2022) Seki et al. [2018] Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Miura, A., Masuda, K., Hirai, T., Iguchi, R., Seki, T., Miura, Y., Tsuchiura, H., Takanashi, K., Uchida, K.-i.: High-temperature dependence of anomalous Ettingshausen effect in SmCo55{}_{5}start_FLOATSUBSCRIPT 5 end_FLOATSUBSCRIPT-type permanent magnets. Applied Physics Letters 117(8), 082408 (2020) Hu et al. [2022] Hu, J., Zhang, Y., Huo, X., Li, N., Liu, S., Yu, D., Ansermet, J.-P., Granville, S., Yu, H.: Large Anomalous Nernst Angle in Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa Thin Film. IEEE Magnetics Letters 13, 1–5 (2022) Seki et al. [2018] Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Hu, J., Zhang, Y., Huo, X., Li, N., Liu, S., Yu, D., Ansermet, J.-P., Granville, S., Yu, H.: Large Anomalous Nernst Angle in Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa Thin Film. IEEE Magnetics Letters 13, 1–5 (2022) Seki et al. [2018] Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1
- Miura, A., Sepehri-Amin, H., Masuda, K., Tsuchiura, H., Miura, Y., Iguchi, R., Sakuraba, Y., Shiomi, J., Hono, K., Uchida, K.-i.: Observation of anomalous Ettingshausen effect and large transverse thermoelectric conductivity in permanent magnets. Applied Physics Letters 115(22), 222403 (2019) Nagasawa et al. [2022] Nagasawa, R., Oyanagi, K., Hirai, T., Modak, R., Kobayashi, S., Uchida, K.-i.: Anomalous Ettingshausen effect in iron–carbon alloys. Applied Physics Letters 121(6), 062401 (2022) Miura et al. [2020] Miura, A., Iguchi, R., Seki, T., Takanashi, K., Uchida, K.-i.: Spin-mediated charge-to-heat current conversion phenomena in ferromagnetic binary alloys. Physical Review Materials 4(3), 034409 (2020) Uchida et al. [2018] Uchida, K.-i., Daimon, S., Iguchi, R., Saitoh, E.: Observation of anisotropic magneto-Peltier effect in nickel. Nature 558(7708), 95–99 (2018) Menges et al. 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[2020] Miura, A., Masuda, K., Hirai, T., Iguchi, R., Seki, T., Miura, Y., Tsuchiura, H., Takanashi, K., Uchida, K.-i.: High-temperature dependence of anomalous Ettingshausen effect in SmCo55{}_{5}start_FLOATSUBSCRIPT 5 end_FLOATSUBSCRIPT-type permanent magnets. Applied Physics Letters 117(8), 082408 (2020) Hu et al. [2022] Hu, J., Zhang, Y., Huo, X., Li, N., Liu, S., Yu, D., Ansermet, J.-P., Granville, S., Yu, H.: Large Anomalous Nernst Angle in Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa Thin Film. IEEE Magnetics Letters 13, 1–5 (2022) Seki et al. [2018] Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Nagasawa, R., Oyanagi, K., Hirai, T., Modak, R., Kobayashi, S., Uchida, K.-i.: Anomalous Ettingshausen effect in iron–carbon alloys. Applied Physics Letters 121(6), 062401 (2022) Miura et al. [2020] Miura, A., Iguchi, R., Seki, T., Takanashi, K., Uchida, K.-i.: Spin-mediated charge-to-heat current conversion phenomena in ferromagnetic binary alloys. Physical Review Materials 4(3), 034409 (2020) Uchida et al. [2018] Uchida, K.-i., Daimon, S., Iguchi, R., Saitoh, E.: Observation of anisotropic magneto-Peltier effect in nickel. Nature 558(7708), 95–99 (2018) Menges et al. [2016] Menges, F., Mensch, P., Schmid, H., Riel, H., Stemmer, A., Gotsmann, B.: Temperature mapping of operating nanoscale devices by scanning probe thermometry. Nature Communications 7(1), 10874 (2016) Harzheim et al. [2018] Harzheim, A., Spiece, J., Evangeli, C., McCann, E., Falko, V., Sheng, Y., Warner, J.H., Briggs, G.A.D., Mol, J.A., Gehring, P., et al.: Geometrically enhanced thermoelectric effects in graphene nanoconstrictions. Nano Letters 18(12), 7719–7725 (2018) Spiece et al. [2018] Spiece, J., Evangeli, C., Lulla, K., Robson, A., Robinson, B., Kolosov, O.: Improving accuracy of nanothermal measurements via spatially distributed scanning thermal microscope probes. Journal of Applied Physics 124(1), 015101 (2018) Das et al. [2019] Das, R., Iguchi, R., Uchida, K.-i.: Systematic investigation of anisotropic magneto–peltier effect and anomalous ettingshausen effect in Ni thin films. Physical Review Applied 11(3), 034022 (2019) Miura et al. [2020] Miura, A., Masuda, K., Hirai, T., Iguchi, R., Seki, T., Miura, Y., Tsuchiura, H., Takanashi, K., Uchida, K.-i.: High-temperature dependence of anomalous Ettingshausen effect in SmCo55{}_{5}start_FLOATSUBSCRIPT 5 end_FLOATSUBSCRIPT-type permanent magnets. Applied Physics Letters 117(8), 082408 (2020) Hu et al. [2022] Hu, J., Zhang, Y., Huo, X., Li, N., Liu, S., Yu, D., Ansermet, J.-P., Granville, S., Yu, H.: Large Anomalous Nernst Angle in Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa Thin Film. IEEE Magnetics Letters 13, 1–5 (2022) Seki et al. [2018] Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Miura, A., Iguchi, R., Seki, T., Takanashi, K., Uchida, K.-i.: Spin-mediated charge-to-heat current conversion phenomena in ferromagnetic binary alloys. Physical Review Materials 4(3), 034409 (2020) Uchida et al. [2018] Uchida, K.-i., Daimon, S., Iguchi, R., Saitoh, E.: Observation of anisotropic magneto-Peltier effect in nickel. Nature 558(7708), 95–99 (2018) Menges et al. [2016] Menges, F., Mensch, P., Schmid, H., Riel, H., Stemmer, A., Gotsmann, B.: Temperature mapping of operating nanoscale devices by scanning probe thermometry. Nature Communications 7(1), 10874 (2016) Harzheim et al. [2018] Harzheim, A., Spiece, J., Evangeli, C., McCann, E., Falko, V., Sheng, Y., Warner, J.H., Briggs, G.A.D., Mol, J.A., Gehring, P., et al.: Geometrically enhanced thermoelectric effects in graphene nanoconstrictions. Nano Letters 18(12), 7719–7725 (2018) Spiece et al. [2018] Spiece, J., Evangeli, C., Lulla, K., Robson, A., Robinson, B., Kolosov, O.: Improving accuracy of nanothermal measurements via spatially distributed scanning thermal microscope probes. Journal of Applied Physics 124(1), 015101 (2018) Das et al. [2019] Das, R., Iguchi, R., Uchida, K.-i.: Systematic investigation of anisotropic magneto–peltier effect and anomalous ettingshausen effect in Ni thin films. Physical Review Applied 11(3), 034022 (2019) Miura et al. [2020] Miura, A., Masuda, K., Hirai, T., Iguchi, R., Seki, T., Miura, Y., Tsuchiura, H., Takanashi, K., Uchida, K.-i.: High-temperature dependence of anomalous Ettingshausen effect in SmCo55{}_{5}start_FLOATSUBSCRIPT 5 end_FLOATSUBSCRIPT-type permanent magnets. Applied Physics Letters 117(8), 082408 (2020) Hu et al. [2022] Hu, J., Zhang, Y., Huo, X., Li, N., Liu, S., Yu, D., Ansermet, J.-P., Granville, S., Yu, H.: Large Anomalous Nernst Angle in Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa Thin Film. IEEE Magnetics Letters 13, 1–5 (2022) Seki et al. [2018] Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Uchida, K.-i., Daimon, S., Iguchi, R., Saitoh, E.: Observation of anisotropic magneto-Peltier effect in nickel. Nature 558(7708), 95–99 (2018) Menges et al. [2016] Menges, F., Mensch, P., Schmid, H., Riel, H., Stemmer, A., Gotsmann, B.: Temperature mapping of operating nanoscale devices by scanning probe thermometry. Nature Communications 7(1), 10874 (2016) Harzheim et al. [2018] Harzheim, A., Spiece, J., Evangeli, C., McCann, E., Falko, V., Sheng, Y., Warner, J.H., Briggs, G.A.D., Mol, J.A., Gehring, P., et al.: Geometrically enhanced thermoelectric effects in graphene nanoconstrictions. Nano Letters 18(12), 7719–7725 (2018) Spiece et al. [2018] Spiece, J., Evangeli, C., Lulla, K., Robson, A., Robinson, B., Kolosov, O.: Improving accuracy of nanothermal measurements via spatially distributed scanning thermal microscope probes. Journal of Applied Physics 124(1), 015101 (2018) Das et al. [2019] Das, R., Iguchi, R., Uchida, K.-i.: Systematic investigation of anisotropic magneto–peltier effect and anomalous ettingshausen effect in Ni thin films. Physical Review Applied 11(3), 034022 (2019) Miura et al. [2020] Miura, A., Masuda, K., Hirai, T., Iguchi, R., Seki, T., Miura, Y., Tsuchiura, H., Takanashi, K., Uchida, K.-i.: High-temperature dependence of anomalous Ettingshausen effect in SmCo55{}_{5}start_FLOATSUBSCRIPT 5 end_FLOATSUBSCRIPT-type permanent magnets. Applied Physics Letters 117(8), 082408 (2020) Hu et al. [2022] Hu, J., Zhang, Y., Huo, X., Li, N., Liu, S., Yu, D., Ansermet, J.-P., Granville, S., Yu, H.: Large Anomalous Nernst Angle in Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa Thin Film. IEEE Magnetics Letters 13, 1–5 (2022) Seki et al. [2018] Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Menges, F., Mensch, P., Schmid, H., Riel, H., Stemmer, A., Gotsmann, B.: Temperature mapping of operating nanoscale devices by scanning probe thermometry. Nature Communications 7(1), 10874 (2016) Harzheim et al. [2018] Harzheim, A., Spiece, J., Evangeli, C., McCann, E., Falko, V., Sheng, Y., Warner, J.H., Briggs, G.A.D., Mol, J.A., Gehring, P., et al.: Geometrically enhanced thermoelectric effects in graphene nanoconstrictions. Nano Letters 18(12), 7719–7725 (2018) Spiece et al. [2018] Spiece, J., Evangeli, C., Lulla, K., Robson, A., Robinson, B., Kolosov, O.: Improving accuracy of nanothermal measurements via spatially distributed scanning thermal microscope probes. Journal of Applied Physics 124(1), 015101 (2018) Das et al. [2019] Das, R., Iguchi, R., Uchida, K.-i.: Systematic investigation of anisotropic magneto–peltier effect and anomalous ettingshausen effect in Ni thin films. Physical Review Applied 11(3), 034022 (2019) Miura et al. [2020] Miura, A., Masuda, K., Hirai, T., Iguchi, R., Seki, T., Miura, Y., Tsuchiura, H., Takanashi, K., Uchida, K.-i.: High-temperature dependence of anomalous Ettingshausen effect in SmCo55{}_{5}start_FLOATSUBSCRIPT 5 end_FLOATSUBSCRIPT-type permanent magnets. Applied Physics Letters 117(8), 082408 (2020) Hu et al. [2022] Hu, J., Zhang, Y., Huo, X., Li, N., Liu, S., Yu, D., Ansermet, J.-P., Granville, S., Yu, H.: Large Anomalous Nernst Angle in Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa Thin Film. IEEE Magnetics Letters 13, 1–5 (2022) Seki et al. [2018] Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Harzheim, A., Spiece, J., Evangeli, C., McCann, E., Falko, V., Sheng, Y., Warner, J.H., Briggs, G.A.D., Mol, J.A., Gehring, P., et al.: Geometrically enhanced thermoelectric effects in graphene nanoconstrictions. Nano Letters 18(12), 7719–7725 (2018) Spiece et al. [2018] Spiece, J., Evangeli, C., Lulla, K., Robson, A., Robinson, B., Kolosov, O.: Improving accuracy of nanothermal measurements via spatially distributed scanning thermal microscope probes. Journal of Applied Physics 124(1), 015101 (2018) Das et al. [2019] Das, R., Iguchi, R., Uchida, K.-i.: Systematic investigation of anisotropic magneto–peltier effect and anomalous ettingshausen effect in Ni thin films. Physical Review Applied 11(3), 034022 (2019) Miura et al. [2020] Miura, A., Masuda, K., Hirai, T., Iguchi, R., Seki, T., Miura, Y., Tsuchiura, H., Takanashi, K., Uchida, K.-i.: High-temperature dependence of anomalous Ettingshausen effect in SmCo55{}_{5}start_FLOATSUBSCRIPT 5 end_FLOATSUBSCRIPT-type permanent magnets. Applied Physics Letters 117(8), 082408 (2020) Hu et al. [2022] Hu, J., Zhang, Y., Huo, X., Li, N., Liu, S., Yu, D., Ansermet, J.-P., Granville, S., Yu, H.: Large Anomalous Nernst Angle in Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa Thin Film. IEEE Magnetics Letters 13, 1–5 (2022) Seki et al. [2018] Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Spiece, J., Evangeli, C., Lulla, K., Robson, A., Robinson, B., Kolosov, O.: Improving accuracy of nanothermal measurements via spatially distributed scanning thermal microscope probes. Journal of Applied Physics 124(1), 015101 (2018) Das et al. [2019] Das, R., Iguchi, R., Uchida, K.-i.: Systematic investigation of anisotropic magneto–peltier effect and anomalous ettingshausen effect in Ni thin films. Physical Review Applied 11(3), 034022 (2019) Miura et al. [2020] Miura, A., Masuda, K., Hirai, T., Iguchi, R., Seki, T., Miura, Y., Tsuchiura, H., Takanashi, K., Uchida, K.-i.: High-temperature dependence of anomalous Ettingshausen effect in SmCo55{}_{5}start_FLOATSUBSCRIPT 5 end_FLOATSUBSCRIPT-type permanent magnets. Applied Physics Letters 117(8), 082408 (2020) Hu et al. [2022] Hu, J., Zhang, Y., Huo, X., Li, N., Liu, S., Yu, D., Ansermet, J.-P., Granville, S., Yu, H.: Large Anomalous Nernst Angle in Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa Thin Film. IEEE Magnetics Letters 13, 1–5 (2022) Seki et al. [2018] Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Das, R., Iguchi, R., Uchida, K.-i.: Systematic investigation of anisotropic magneto–peltier effect and anomalous ettingshausen effect in Ni thin films. Physical Review Applied 11(3), 034022 (2019) Miura et al. [2020] Miura, A., Masuda, K., Hirai, T., Iguchi, R., Seki, T., Miura, Y., Tsuchiura, H., Takanashi, K., Uchida, K.-i.: High-temperature dependence of anomalous Ettingshausen effect in SmCo55{}_{5}start_FLOATSUBSCRIPT 5 end_FLOATSUBSCRIPT-type permanent magnets. Applied Physics Letters 117(8), 082408 (2020) Hu et al. [2022] Hu, J., Zhang, Y., Huo, X., Li, N., Liu, S., Yu, D., Ansermet, J.-P., Granville, S., Yu, H.: Large Anomalous Nernst Angle in Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa Thin Film. IEEE Magnetics Letters 13, 1–5 (2022) Seki et al. [2018] Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Miura, A., Masuda, K., Hirai, T., Iguchi, R., Seki, T., Miura, Y., Tsuchiura, H., Takanashi, K., Uchida, K.-i.: High-temperature dependence of anomalous Ettingshausen effect in SmCo55{}_{5}start_FLOATSUBSCRIPT 5 end_FLOATSUBSCRIPT-type permanent magnets. Applied Physics Letters 117(8), 082408 (2020) Hu et al. [2022] Hu, J., Zhang, Y., Huo, X., Li, N., Liu, S., Yu, D., Ansermet, J.-P., Granville, S., Yu, H.: Large Anomalous Nernst Angle in Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa Thin Film. IEEE Magnetics Letters 13, 1–5 (2022) Seki et al. [2018] Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Hu, J., Zhang, Y., Huo, X., Li, N., Liu, S., Yu, D., Ansermet, J.-P., Granville, S., Yu, H.: Large Anomalous Nernst Angle in Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa Thin Film. IEEE Magnetics Letters 13, 1–5 (2022) Seki et al. [2018] Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. 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Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. 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[2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1
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[2018] Harzheim, A., Spiece, J., Evangeli, C., McCann, E., Falko, V., Sheng, Y., Warner, J.H., Briggs, G.A.D., Mol, J.A., Gehring, P., et al.: Geometrically enhanced thermoelectric effects in graphene nanoconstrictions. Nano Letters 18(12), 7719–7725 (2018) Spiece et al. [2018] Spiece, J., Evangeli, C., Lulla, K., Robson, A., Robinson, B., Kolosov, O.: Improving accuracy of nanothermal measurements via spatially distributed scanning thermal microscope probes. Journal of Applied Physics 124(1), 015101 (2018) Das et al. [2019] Das, R., Iguchi, R., Uchida, K.-i.: Systematic investigation of anisotropic magneto–peltier effect and anomalous ettingshausen effect in Ni thin films. Physical Review Applied 11(3), 034022 (2019) Miura et al. [2020] Miura, A., Masuda, K., Hirai, T., Iguchi, R., Seki, T., Miura, Y., Tsuchiura, H., Takanashi, K., Uchida, K.-i.: High-temperature dependence of anomalous Ettingshausen effect in SmCo55{}_{5}start_FLOATSUBSCRIPT 5 end_FLOATSUBSCRIPT-type permanent magnets. Applied Physics Letters 117(8), 082408 (2020) Hu et al. [2022] Hu, J., Zhang, Y., Huo, X., Li, N., Liu, S., Yu, D., Ansermet, J.-P., Granville, S., Yu, H.: Large Anomalous Nernst Angle in Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa Thin Film. IEEE Magnetics Letters 13, 1–5 (2022) Seki et al. [2018] Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Miura, A., Iguchi, R., Seki, T., Takanashi, K., Uchida, K.-i.: Spin-mediated charge-to-heat current conversion phenomena in ferromagnetic binary alloys. Physical Review Materials 4(3), 034409 (2020) Uchida et al. [2018] Uchida, K.-i., Daimon, S., Iguchi, R., Saitoh, E.: Observation of anisotropic magneto-Peltier effect in nickel. Nature 558(7708), 95–99 (2018) Menges et al. [2016] Menges, F., Mensch, P., Schmid, H., Riel, H., Stemmer, A., Gotsmann, B.: Temperature mapping of operating nanoscale devices by scanning probe thermometry. Nature Communications 7(1), 10874 (2016) Harzheim et al. [2018] Harzheim, A., Spiece, J., Evangeli, C., McCann, E., Falko, V., Sheng, Y., Warner, J.H., Briggs, G.A.D., Mol, J.A., Gehring, P., et al.: Geometrically enhanced thermoelectric effects in graphene nanoconstrictions. Nano Letters 18(12), 7719–7725 (2018) Spiece et al. [2018] Spiece, J., Evangeli, C., Lulla, K., Robson, A., Robinson, B., Kolosov, O.: Improving accuracy of nanothermal measurements via spatially distributed scanning thermal microscope probes. Journal of Applied Physics 124(1), 015101 (2018) Das et al. [2019] Das, R., Iguchi, R., Uchida, K.-i.: Systematic investigation of anisotropic magneto–peltier effect and anomalous ettingshausen effect in Ni thin films. Physical Review Applied 11(3), 034022 (2019) Miura et al. [2020] Miura, A., Masuda, K., Hirai, T., Iguchi, R., Seki, T., Miura, Y., Tsuchiura, H., Takanashi, K., Uchida, K.-i.: High-temperature dependence of anomalous Ettingshausen effect in SmCo55{}_{5}start_FLOATSUBSCRIPT 5 end_FLOATSUBSCRIPT-type permanent magnets. Applied Physics Letters 117(8), 082408 (2020) Hu et al. [2022] Hu, J., Zhang, Y., Huo, X., Li, N., Liu, S., Yu, D., Ansermet, J.-P., Granville, S., Yu, H.: Large Anomalous Nernst Angle in Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa Thin Film. IEEE Magnetics Letters 13, 1–5 (2022) Seki et al. [2018] Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Uchida, K.-i., Daimon, S., Iguchi, R., Saitoh, E.: Observation of anisotropic magneto-Peltier effect in nickel. Nature 558(7708), 95–99 (2018) Menges et al. [2016] Menges, F., Mensch, P., Schmid, H., Riel, H., Stemmer, A., Gotsmann, B.: Temperature mapping of operating nanoscale devices by scanning probe thermometry. Nature Communications 7(1), 10874 (2016) Harzheim et al. [2018] Harzheim, A., Spiece, J., Evangeli, C., McCann, E., Falko, V., Sheng, Y., Warner, J.H., Briggs, G.A.D., Mol, J.A., Gehring, P., et al.: Geometrically enhanced thermoelectric effects in graphene nanoconstrictions. Nano Letters 18(12), 7719–7725 (2018) Spiece et al. [2018] Spiece, J., Evangeli, C., Lulla, K., Robson, A., Robinson, B., Kolosov, O.: Improving accuracy of nanothermal measurements via spatially distributed scanning thermal microscope probes. Journal of Applied Physics 124(1), 015101 (2018) Das et al. [2019] Das, R., Iguchi, R., Uchida, K.-i.: Systematic investigation of anisotropic magneto–peltier effect and anomalous ettingshausen effect in Ni thin films. Physical Review Applied 11(3), 034022 (2019) Miura et al. [2020] Miura, A., Masuda, K., Hirai, T., Iguchi, R., Seki, T., Miura, Y., Tsuchiura, H., Takanashi, K., Uchida, K.-i.: High-temperature dependence of anomalous Ettingshausen effect in SmCo55{}_{5}start_FLOATSUBSCRIPT 5 end_FLOATSUBSCRIPT-type permanent magnets. Applied Physics Letters 117(8), 082408 (2020) Hu et al. [2022] Hu, J., Zhang, Y., Huo, X., Li, N., Liu, S., Yu, D., Ansermet, J.-P., Granville, S., Yu, H.: Large Anomalous Nernst Angle in Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa Thin Film. IEEE Magnetics Letters 13, 1–5 (2022) Seki et al. [2018] Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Menges, F., Mensch, P., Schmid, H., Riel, H., Stemmer, A., Gotsmann, B.: Temperature mapping of operating nanoscale devices by scanning probe thermometry. Nature Communications 7(1), 10874 (2016) Harzheim et al. [2018] Harzheim, A., Spiece, J., Evangeli, C., McCann, E., Falko, V., Sheng, Y., Warner, J.H., Briggs, G.A.D., Mol, J.A., Gehring, P., et al.: Geometrically enhanced thermoelectric effects in graphene nanoconstrictions. Nano Letters 18(12), 7719–7725 (2018) Spiece et al. [2018] Spiece, J., Evangeli, C., Lulla, K., Robson, A., Robinson, B., Kolosov, O.: Improving accuracy of nanothermal measurements via spatially distributed scanning thermal microscope probes. Journal of Applied Physics 124(1), 015101 (2018) Das et al. [2019] Das, R., Iguchi, R., Uchida, K.-i.: Systematic investigation of anisotropic magneto–peltier effect and anomalous ettingshausen effect in Ni thin films. Physical Review Applied 11(3), 034022 (2019) Miura et al. [2020] Miura, A., Masuda, K., Hirai, T., Iguchi, R., Seki, T., Miura, Y., Tsuchiura, H., Takanashi, K., Uchida, K.-i.: High-temperature dependence of anomalous Ettingshausen effect in SmCo55{}_{5}start_FLOATSUBSCRIPT 5 end_FLOATSUBSCRIPT-type permanent magnets. Applied Physics Letters 117(8), 082408 (2020) Hu et al. [2022] Hu, J., Zhang, Y., Huo, X., Li, N., Liu, S., Yu, D., Ansermet, J.-P., Granville, S., Yu, H.: Large Anomalous Nernst Angle in Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa Thin Film. IEEE Magnetics Letters 13, 1–5 (2022) Seki et al. [2018] Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Harzheim, A., Spiece, J., Evangeli, C., McCann, E., Falko, V., Sheng, Y., Warner, J.H., Briggs, G.A.D., Mol, J.A., Gehring, P., et al.: Geometrically enhanced thermoelectric effects in graphene nanoconstrictions. Nano Letters 18(12), 7719–7725 (2018) Spiece et al. [2018] Spiece, J., Evangeli, C., Lulla, K., Robson, A., Robinson, B., Kolosov, O.: Improving accuracy of nanothermal measurements via spatially distributed scanning thermal microscope probes. Journal of Applied Physics 124(1), 015101 (2018) Das et al. [2019] Das, R., Iguchi, R., Uchida, K.-i.: Systematic investigation of anisotropic magneto–peltier effect and anomalous ettingshausen effect in Ni thin films. Physical Review Applied 11(3), 034022 (2019) Miura et al. [2020] Miura, A., Masuda, K., Hirai, T., Iguchi, R., Seki, T., Miura, Y., Tsuchiura, H., Takanashi, K., Uchida, K.-i.: High-temperature dependence of anomalous Ettingshausen effect in SmCo55{}_{5}start_FLOATSUBSCRIPT 5 end_FLOATSUBSCRIPT-type permanent magnets. Applied Physics Letters 117(8), 082408 (2020) Hu et al. [2022] Hu, J., Zhang, Y., Huo, X., Li, N., Liu, S., Yu, D., Ansermet, J.-P., Granville, S., Yu, H.: Large Anomalous Nernst Angle in Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa Thin Film. IEEE Magnetics Letters 13, 1–5 (2022) Seki et al. [2018] Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Spiece, J., Evangeli, C., Lulla, K., Robson, A., Robinson, B., Kolosov, O.: Improving accuracy of nanothermal measurements via spatially distributed scanning thermal microscope probes. Journal of Applied Physics 124(1), 015101 (2018) Das et al. [2019] Das, R., Iguchi, R., Uchida, K.-i.: Systematic investigation of anisotropic magneto–peltier effect and anomalous ettingshausen effect in Ni thin films. Physical Review Applied 11(3), 034022 (2019) Miura et al. [2020] Miura, A., Masuda, K., Hirai, T., Iguchi, R., Seki, T., Miura, Y., Tsuchiura, H., Takanashi, K., Uchida, K.-i.: High-temperature dependence of anomalous Ettingshausen effect in SmCo55{}_{5}start_FLOATSUBSCRIPT 5 end_FLOATSUBSCRIPT-type permanent magnets. Applied Physics Letters 117(8), 082408 (2020) Hu et al. [2022] Hu, J., Zhang, Y., Huo, X., Li, N., Liu, S., Yu, D., Ansermet, J.-P., Granville, S., Yu, H.: Large Anomalous Nernst Angle in Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa Thin Film. IEEE Magnetics Letters 13, 1–5 (2022) Seki et al. [2018] Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Das, R., Iguchi, R., Uchida, K.-i.: Systematic investigation of anisotropic magneto–peltier effect and anomalous ettingshausen effect in Ni thin films. Physical Review Applied 11(3), 034022 (2019) Miura et al. [2020] Miura, A., Masuda, K., Hirai, T., Iguchi, R., Seki, T., Miura, Y., Tsuchiura, H., Takanashi, K., Uchida, K.-i.: High-temperature dependence of anomalous Ettingshausen effect in SmCo55{}_{5}start_FLOATSUBSCRIPT 5 end_FLOATSUBSCRIPT-type permanent magnets. Applied Physics Letters 117(8), 082408 (2020) Hu et al. [2022] Hu, J., Zhang, Y., Huo, X., Li, N., Liu, S., Yu, D., Ansermet, J.-P., Granville, S., Yu, H.: Large Anomalous Nernst Angle in Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa Thin Film. IEEE Magnetics Letters 13, 1–5 (2022) Seki et al. [2018] Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Miura, A., Masuda, K., Hirai, T., Iguchi, R., Seki, T., Miura, Y., Tsuchiura, H., Takanashi, K., Uchida, K.-i.: High-temperature dependence of anomalous Ettingshausen effect in SmCo55{}_{5}start_FLOATSUBSCRIPT 5 end_FLOATSUBSCRIPT-type permanent magnets. Applied Physics Letters 117(8), 082408 (2020) Hu et al. [2022] Hu, J., Zhang, Y., Huo, X., Li, N., Liu, S., Yu, D., Ansermet, J.-P., Granville, S., Yu, H.: Large Anomalous Nernst Angle in Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa Thin Film. IEEE Magnetics Letters 13, 1–5 (2022) Seki et al. [2018] Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Hu, J., Zhang, Y., Huo, X., Li, N., Liu, S., Yu, D., Ansermet, J.-P., Granville, S., Yu, H.: Large Anomalous Nernst Angle in Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa Thin Film. IEEE Magnetics Letters 13, 1–5 (2022) Seki et al. [2018] Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1
- Miura, A., Iguchi, R., Seki, T., Takanashi, K., Uchida, K.-i.: Spin-mediated charge-to-heat current conversion phenomena in ferromagnetic binary alloys. Physical Review Materials 4(3), 034409 (2020) Uchida et al. [2018] Uchida, K.-i., Daimon, S., Iguchi, R., Saitoh, E.: Observation of anisotropic magneto-Peltier effect in nickel. Nature 558(7708), 95–99 (2018) Menges et al. [2016] Menges, F., Mensch, P., Schmid, H., Riel, H., Stemmer, A., Gotsmann, B.: Temperature mapping of operating nanoscale devices by scanning probe thermometry. Nature Communications 7(1), 10874 (2016) Harzheim et al. [2018] Harzheim, A., Spiece, J., Evangeli, C., McCann, E., Falko, V., Sheng, Y., Warner, J.H., Briggs, G.A.D., Mol, J.A., Gehring, P., et al.: Geometrically enhanced thermoelectric effects in graphene nanoconstrictions. Nano Letters 18(12), 7719–7725 (2018) Spiece et al. [2018] Spiece, J., Evangeli, C., Lulla, K., Robson, A., Robinson, B., Kolosov, O.: Improving accuracy of nanothermal measurements via spatially distributed scanning thermal microscope probes. Journal of Applied Physics 124(1), 015101 (2018) Das et al. [2019] Das, R., Iguchi, R., Uchida, K.-i.: Systematic investigation of anisotropic magneto–peltier effect and anomalous ettingshausen effect in Ni thin films. Physical Review Applied 11(3), 034022 (2019) Miura et al. [2020] Miura, A., Masuda, K., Hirai, T., Iguchi, R., Seki, T., Miura, Y., Tsuchiura, H., Takanashi, K., Uchida, K.-i.: High-temperature dependence of anomalous Ettingshausen effect in SmCo55{}_{5}start_FLOATSUBSCRIPT 5 end_FLOATSUBSCRIPT-type permanent magnets. Applied Physics Letters 117(8), 082408 (2020) Hu et al. [2022] Hu, J., Zhang, Y., Huo, X., Li, N., Liu, S., Yu, D., Ansermet, J.-P., Granville, S., Yu, H.: Large Anomalous Nernst Angle in Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa Thin Film. IEEE Magnetics Letters 13, 1–5 (2022) Seki et al. [2018] Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Uchida, K.-i., Daimon, S., Iguchi, R., Saitoh, E.: Observation of anisotropic magneto-Peltier effect in nickel. Nature 558(7708), 95–99 (2018) Menges et al. [2016] Menges, F., Mensch, P., Schmid, H., Riel, H., Stemmer, A., Gotsmann, B.: Temperature mapping of operating nanoscale devices by scanning probe thermometry. Nature Communications 7(1), 10874 (2016) Harzheim et al. [2018] Harzheim, A., Spiece, J., Evangeli, C., McCann, E., Falko, V., Sheng, Y., Warner, J.H., Briggs, G.A.D., Mol, J.A., Gehring, P., et al.: Geometrically enhanced thermoelectric effects in graphene nanoconstrictions. Nano Letters 18(12), 7719–7725 (2018) Spiece et al. [2018] Spiece, J., Evangeli, C., Lulla, K., Robson, A., Robinson, B., Kolosov, O.: Improving accuracy of nanothermal measurements via spatially distributed scanning thermal microscope probes. Journal of Applied Physics 124(1), 015101 (2018) Das et al. [2019] Das, R., Iguchi, R., Uchida, K.-i.: Systematic investigation of anisotropic magneto–peltier effect and anomalous ettingshausen effect in Ni thin films. Physical Review Applied 11(3), 034022 (2019) Miura et al. [2020] Miura, A., Masuda, K., Hirai, T., Iguchi, R., Seki, T., Miura, Y., Tsuchiura, H., Takanashi, K., Uchida, K.-i.: High-temperature dependence of anomalous Ettingshausen effect in SmCo55{}_{5}start_FLOATSUBSCRIPT 5 end_FLOATSUBSCRIPT-type permanent magnets. Applied Physics Letters 117(8), 082408 (2020) Hu et al. [2022] Hu, J., Zhang, Y., Huo, X., Li, N., Liu, S., Yu, D., Ansermet, J.-P., Granville, S., Yu, H.: Large Anomalous Nernst Angle in Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa Thin Film. IEEE Magnetics Letters 13, 1–5 (2022) Seki et al. [2018] Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Menges, F., Mensch, P., Schmid, H., Riel, H., Stemmer, A., Gotsmann, B.: Temperature mapping of operating nanoscale devices by scanning probe thermometry. Nature Communications 7(1), 10874 (2016) Harzheim et al. [2018] Harzheim, A., Spiece, J., Evangeli, C., McCann, E., Falko, V., Sheng, Y., Warner, J.H., Briggs, G.A.D., Mol, J.A., Gehring, P., et al.: Geometrically enhanced thermoelectric effects in graphene nanoconstrictions. Nano Letters 18(12), 7719–7725 (2018) Spiece et al. [2018] Spiece, J., Evangeli, C., Lulla, K., Robson, A., Robinson, B., Kolosov, O.: Improving accuracy of nanothermal measurements via spatially distributed scanning thermal microscope probes. Journal of Applied Physics 124(1), 015101 (2018) Das et al. [2019] Das, R., Iguchi, R., Uchida, K.-i.: Systematic investigation of anisotropic magneto–peltier effect and anomalous ettingshausen effect in Ni thin films. Physical Review Applied 11(3), 034022 (2019) Miura et al. [2020] Miura, A., Masuda, K., Hirai, T., Iguchi, R., Seki, T., Miura, Y., Tsuchiura, H., Takanashi, K., Uchida, K.-i.: High-temperature dependence of anomalous Ettingshausen effect in SmCo55{}_{5}start_FLOATSUBSCRIPT 5 end_FLOATSUBSCRIPT-type permanent magnets. Applied Physics Letters 117(8), 082408 (2020) Hu et al. [2022] Hu, J., Zhang, Y., Huo, X., Li, N., Liu, S., Yu, D., Ansermet, J.-P., Granville, S., Yu, H.: Large Anomalous Nernst Angle in Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa Thin Film. IEEE Magnetics Letters 13, 1–5 (2022) Seki et al. [2018] Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Harzheim, A., Spiece, J., Evangeli, C., McCann, E., Falko, V., Sheng, Y., Warner, J.H., Briggs, G.A.D., Mol, J.A., Gehring, P., et al.: Geometrically enhanced thermoelectric effects in graphene nanoconstrictions. Nano Letters 18(12), 7719–7725 (2018) Spiece et al. [2018] Spiece, J., Evangeli, C., Lulla, K., Robson, A., Robinson, B., Kolosov, O.: Improving accuracy of nanothermal measurements via spatially distributed scanning thermal microscope probes. Journal of Applied Physics 124(1), 015101 (2018) Das et al. [2019] Das, R., Iguchi, R., Uchida, K.-i.: Systematic investigation of anisotropic magneto–peltier effect and anomalous ettingshausen effect in Ni thin films. Physical Review Applied 11(3), 034022 (2019) Miura et al. [2020] Miura, A., Masuda, K., Hirai, T., Iguchi, R., Seki, T., Miura, Y., Tsuchiura, H., Takanashi, K., Uchida, K.-i.: High-temperature dependence of anomalous Ettingshausen effect in SmCo55{}_{5}start_FLOATSUBSCRIPT 5 end_FLOATSUBSCRIPT-type permanent magnets. Applied Physics Letters 117(8), 082408 (2020) Hu et al. [2022] Hu, J., Zhang, Y., Huo, X., Li, N., Liu, S., Yu, D., Ansermet, J.-P., Granville, S., Yu, H.: Large Anomalous Nernst Angle in Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa Thin Film. IEEE Magnetics Letters 13, 1–5 (2022) Seki et al. [2018] Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Spiece, J., Evangeli, C., Lulla, K., Robson, A., Robinson, B., Kolosov, O.: Improving accuracy of nanothermal measurements via spatially distributed scanning thermal microscope probes. Journal of Applied Physics 124(1), 015101 (2018) Das et al. [2019] Das, R., Iguchi, R., Uchida, K.-i.: Systematic investigation of anisotropic magneto–peltier effect and anomalous ettingshausen effect in Ni thin films. Physical Review Applied 11(3), 034022 (2019) Miura et al. [2020] Miura, A., Masuda, K., Hirai, T., Iguchi, R., Seki, T., Miura, Y., Tsuchiura, H., Takanashi, K., Uchida, K.-i.: High-temperature dependence of anomalous Ettingshausen effect in SmCo55{}_{5}start_FLOATSUBSCRIPT 5 end_FLOATSUBSCRIPT-type permanent magnets. Applied Physics Letters 117(8), 082408 (2020) Hu et al. [2022] Hu, J., Zhang, Y., Huo, X., Li, N., Liu, S., Yu, D., Ansermet, J.-P., Granville, S., Yu, H.: Large Anomalous Nernst Angle in Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa Thin Film. IEEE Magnetics Letters 13, 1–5 (2022) Seki et al. [2018] Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Das, R., Iguchi, R., Uchida, K.-i.: Systematic investigation of anisotropic magneto–peltier effect and anomalous ettingshausen effect in Ni thin films. Physical Review Applied 11(3), 034022 (2019) Miura et al. [2020] Miura, A., Masuda, K., Hirai, T., Iguchi, R., Seki, T., Miura, Y., Tsuchiura, H., Takanashi, K., Uchida, K.-i.: High-temperature dependence of anomalous Ettingshausen effect in SmCo55{}_{5}start_FLOATSUBSCRIPT 5 end_FLOATSUBSCRIPT-type permanent magnets. Applied Physics Letters 117(8), 082408 (2020) Hu et al. [2022] Hu, J., Zhang, Y., Huo, X., Li, N., Liu, S., Yu, D., Ansermet, J.-P., Granville, S., Yu, H.: Large Anomalous Nernst Angle in Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa Thin Film. IEEE Magnetics Letters 13, 1–5 (2022) Seki et al. [2018] Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Miura, A., Masuda, K., Hirai, T., Iguchi, R., Seki, T., Miura, Y., Tsuchiura, H., Takanashi, K., Uchida, K.-i.: High-temperature dependence of anomalous Ettingshausen effect in SmCo55{}_{5}start_FLOATSUBSCRIPT 5 end_FLOATSUBSCRIPT-type permanent magnets. Applied Physics Letters 117(8), 082408 (2020) Hu et al. [2022] Hu, J., Zhang, Y., Huo, X., Li, N., Liu, S., Yu, D., Ansermet, J.-P., Granville, S., Yu, H.: Large Anomalous Nernst Angle in Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa Thin Film. IEEE Magnetics Letters 13, 1–5 (2022) Seki et al. [2018] Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Hu, J., Zhang, Y., Huo, X., Li, N., Liu, S., Yu, D., Ansermet, J.-P., Granville, S., Yu, H.: Large Anomalous Nernst Angle in Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa Thin Film. IEEE Magnetics Letters 13, 1–5 (2022) Seki et al. [2018] Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1
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[2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Menges, F., Mensch, P., Schmid, H., Riel, H., Stemmer, A., Gotsmann, B.: Temperature mapping of operating nanoscale devices by scanning probe thermometry. Nature Communications 7(1), 10874 (2016) Harzheim et al. [2018] Harzheim, A., Spiece, J., Evangeli, C., McCann, E., Falko, V., Sheng, Y., Warner, J.H., Briggs, G.A.D., Mol, J.A., Gehring, P., et al.: Geometrically enhanced thermoelectric effects in graphene nanoconstrictions. Nano Letters 18(12), 7719–7725 (2018) Spiece et al. [2018] Spiece, J., Evangeli, C., Lulla, K., Robson, A., Robinson, B., Kolosov, O.: Improving accuracy of nanothermal measurements via spatially distributed scanning thermal microscope probes. Journal of Applied Physics 124(1), 015101 (2018) Das et al. [2019] Das, R., Iguchi, R., Uchida, K.-i.: Systematic investigation of anisotropic magneto–peltier effect and anomalous ettingshausen effect in Ni thin films. Physical Review Applied 11(3), 034022 (2019) Miura et al. [2020] Miura, A., Masuda, K., Hirai, T., Iguchi, R., Seki, T., Miura, Y., Tsuchiura, H., Takanashi, K., Uchida, K.-i.: High-temperature dependence of anomalous Ettingshausen effect in SmCo55{}_{5}start_FLOATSUBSCRIPT 5 end_FLOATSUBSCRIPT-type permanent magnets. Applied Physics Letters 117(8), 082408 (2020) Hu et al. [2022] Hu, J., Zhang, Y., Huo, X., Li, N., Liu, S., Yu, D., Ansermet, J.-P., Granville, S., Yu, H.: Large Anomalous Nernst Angle in Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa Thin Film. IEEE Magnetics Letters 13, 1–5 (2022) Seki et al. [2018] Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Harzheim, A., Spiece, J., Evangeli, C., McCann, E., Falko, V., Sheng, Y., Warner, J.H., Briggs, G.A.D., Mol, J.A., Gehring, P., et al.: Geometrically enhanced thermoelectric effects in graphene nanoconstrictions. Nano Letters 18(12), 7719–7725 (2018) Spiece et al. [2018] Spiece, J., Evangeli, C., Lulla, K., Robson, A., Robinson, B., Kolosov, O.: Improving accuracy of nanothermal measurements via spatially distributed scanning thermal microscope probes. Journal of Applied Physics 124(1), 015101 (2018) Das et al. [2019] Das, R., Iguchi, R., Uchida, K.-i.: Systematic investigation of anisotropic magneto–peltier effect and anomalous ettingshausen effect in Ni thin films. Physical Review Applied 11(3), 034022 (2019) Miura et al. [2020] Miura, A., Masuda, K., Hirai, T., Iguchi, R., Seki, T., Miura, Y., Tsuchiura, H., Takanashi, K., Uchida, K.-i.: High-temperature dependence of anomalous Ettingshausen effect in SmCo55{}_{5}start_FLOATSUBSCRIPT 5 end_FLOATSUBSCRIPT-type permanent magnets. Applied Physics Letters 117(8), 082408 (2020) Hu et al. [2022] Hu, J., Zhang, Y., Huo, X., Li, N., Liu, S., Yu, D., Ansermet, J.-P., Granville, S., Yu, H.: Large Anomalous Nernst Angle in Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa Thin Film. IEEE Magnetics Letters 13, 1–5 (2022) Seki et al. [2018] Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Spiece, J., Evangeli, C., Lulla, K., Robson, A., Robinson, B., Kolosov, O.: Improving accuracy of nanothermal measurements via spatially distributed scanning thermal microscope probes. Journal of Applied Physics 124(1), 015101 (2018) Das et al. [2019] Das, R., Iguchi, R., Uchida, K.-i.: Systematic investigation of anisotropic magneto–peltier effect and anomalous ettingshausen effect in Ni thin films. Physical Review Applied 11(3), 034022 (2019) Miura et al. [2020] Miura, A., Masuda, K., Hirai, T., Iguchi, R., Seki, T., Miura, Y., Tsuchiura, H., Takanashi, K., Uchida, K.-i.: High-temperature dependence of anomalous Ettingshausen effect in SmCo55{}_{5}start_FLOATSUBSCRIPT 5 end_FLOATSUBSCRIPT-type permanent magnets. Applied Physics Letters 117(8), 082408 (2020) Hu et al. [2022] Hu, J., Zhang, Y., Huo, X., Li, N., Liu, S., Yu, D., Ansermet, J.-P., Granville, S., Yu, H.: Large Anomalous Nernst Angle in Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa Thin Film. IEEE Magnetics Letters 13, 1–5 (2022) Seki et al. [2018] Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Das, R., Iguchi, R., Uchida, K.-i.: Systematic investigation of anisotropic magneto–peltier effect and anomalous ettingshausen effect in Ni thin films. Physical Review Applied 11(3), 034022 (2019) Miura et al. [2020] Miura, A., Masuda, K., Hirai, T., Iguchi, R., Seki, T., Miura, Y., Tsuchiura, H., Takanashi, K., Uchida, K.-i.: High-temperature dependence of anomalous Ettingshausen effect in SmCo55{}_{5}start_FLOATSUBSCRIPT 5 end_FLOATSUBSCRIPT-type permanent magnets. Applied Physics Letters 117(8), 082408 (2020) Hu et al. [2022] Hu, J., Zhang, Y., Huo, X., Li, N., Liu, S., Yu, D., Ansermet, J.-P., Granville, S., Yu, H.: Large Anomalous Nernst Angle in Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa Thin Film. IEEE Magnetics Letters 13, 1–5 (2022) Seki et al. [2018] Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Miura, A., Masuda, K., Hirai, T., Iguchi, R., Seki, T., Miura, Y., Tsuchiura, H., Takanashi, K., Uchida, K.-i.: High-temperature dependence of anomalous Ettingshausen effect in SmCo55{}_{5}start_FLOATSUBSCRIPT 5 end_FLOATSUBSCRIPT-type permanent magnets. Applied Physics Letters 117(8), 082408 (2020) Hu et al. [2022] Hu, J., Zhang, Y., Huo, X., Li, N., Liu, S., Yu, D., Ansermet, J.-P., Granville, S., Yu, H.: Large Anomalous Nernst Angle in Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa Thin Film. IEEE Magnetics Letters 13, 1–5 (2022) Seki et al. [2018] Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Hu, J., Zhang, Y., Huo, X., Li, N., Liu, S., Yu, D., Ansermet, J.-P., Granville, S., Yu, H.: Large Anomalous Nernst Angle in Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa Thin Film. IEEE Magnetics Letters 13, 1–5 (2022) Seki et al. [2018] Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. 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Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. 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[2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1
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[2020] Miura, A., Masuda, K., Hirai, T., Iguchi, R., Seki, T., Miura, Y., Tsuchiura, H., Takanashi, K., Uchida, K.-i.: High-temperature dependence of anomalous Ettingshausen effect in SmCo55{}_{5}start_FLOATSUBSCRIPT 5 end_FLOATSUBSCRIPT-type permanent magnets. Applied Physics Letters 117(8), 082408 (2020) Hu et al. [2022] Hu, J., Zhang, Y., Huo, X., Li, N., Liu, S., Yu, D., Ansermet, J.-P., Granville, S., Yu, H.: Large Anomalous Nernst Angle in Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa Thin Film. IEEE Magnetics Letters 13, 1–5 (2022) Seki et al. [2018] Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Harzheim, A., Spiece, J., Evangeli, C., McCann, E., Falko, V., Sheng, Y., Warner, J.H., Briggs, G.A.D., Mol, J.A., Gehring, P., et al.: Geometrically enhanced thermoelectric effects in graphene nanoconstrictions. Nano Letters 18(12), 7719–7725 (2018) Spiece et al. [2018] Spiece, J., Evangeli, C., Lulla, K., Robson, A., Robinson, B., Kolosov, O.: Improving accuracy of nanothermal measurements via spatially distributed scanning thermal microscope probes. Journal of Applied Physics 124(1), 015101 (2018) Das et al. [2019] Das, R., Iguchi, R., Uchida, K.-i.: Systematic investigation of anisotropic magneto–peltier effect and anomalous ettingshausen effect in Ni thin films. Physical Review Applied 11(3), 034022 (2019) Miura et al. [2020] Miura, A., Masuda, K., Hirai, T., Iguchi, R., Seki, T., Miura, Y., Tsuchiura, H., Takanashi, K., Uchida, K.-i.: High-temperature dependence of anomalous Ettingshausen effect in SmCo55{}_{5}start_FLOATSUBSCRIPT 5 end_FLOATSUBSCRIPT-type permanent magnets. Applied Physics Letters 117(8), 082408 (2020) Hu et al. [2022] Hu, J., Zhang, Y., Huo, X., Li, N., Liu, S., Yu, D., Ansermet, J.-P., Granville, S., Yu, H.: Large Anomalous Nernst Angle in Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa Thin Film. IEEE Magnetics Letters 13, 1–5 (2022) Seki et al. [2018] Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Spiece, J., Evangeli, C., Lulla, K., Robson, A., Robinson, B., Kolosov, O.: Improving accuracy of nanothermal measurements via spatially distributed scanning thermal microscope probes. Journal of Applied Physics 124(1), 015101 (2018) Das et al. [2019] Das, R., Iguchi, R., Uchida, K.-i.: Systematic investigation of anisotropic magneto–peltier effect and anomalous ettingshausen effect in Ni thin films. Physical Review Applied 11(3), 034022 (2019) Miura et al. [2020] Miura, A., Masuda, K., Hirai, T., Iguchi, R., Seki, T., Miura, Y., Tsuchiura, H., Takanashi, K., Uchida, K.-i.: High-temperature dependence of anomalous Ettingshausen effect in SmCo55{}_{5}start_FLOATSUBSCRIPT 5 end_FLOATSUBSCRIPT-type permanent magnets. Applied Physics Letters 117(8), 082408 (2020) Hu et al. [2022] Hu, J., Zhang, Y., Huo, X., Li, N., Liu, S., Yu, D., Ansermet, J.-P., Granville, S., Yu, H.: Large Anomalous Nernst Angle in Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa Thin Film. IEEE Magnetics Letters 13, 1–5 (2022) Seki et al. [2018] Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Das, R., Iguchi, R., Uchida, K.-i.: Systematic investigation of anisotropic magneto–peltier effect and anomalous ettingshausen effect in Ni thin films. Physical Review Applied 11(3), 034022 (2019) Miura et al. [2020] Miura, A., Masuda, K., Hirai, T., Iguchi, R., Seki, T., Miura, Y., Tsuchiura, H., Takanashi, K., Uchida, K.-i.: High-temperature dependence of anomalous Ettingshausen effect in SmCo55{}_{5}start_FLOATSUBSCRIPT 5 end_FLOATSUBSCRIPT-type permanent magnets. Applied Physics Letters 117(8), 082408 (2020) Hu et al. [2022] Hu, J., Zhang, Y., Huo, X., Li, N., Liu, S., Yu, D., Ansermet, J.-P., Granville, S., Yu, H.: Large Anomalous Nernst Angle in Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa Thin Film. IEEE Magnetics Letters 13, 1–5 (2022) Seki et al. [2018] Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Miura, A., Masuda, K., Hirai, T., Iguchi, R., Seki, T., Miura, Y., Tsuchiura, H., Takanashi, K., Uchida, K.-i.: High-temperature dependence of anomalous Ettingshausen effect in SmCo55{}_{5}start_FLOATSUBSCRIPT 5 end_FLOATSUBSCRIPT-type permanent magnets. Applied Physics Letters 117(8), 082408 (2020) Hu et al. [2022] Hu, J., Zhang, Y., Huo, X., Li, N., Liu, S., Yu, D., Ansermet, J.-P., Granville, S., Yu, H.: Large Anomalous Nernst Angle in Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa Thin Film. IEEE Magnetics Letters 13, 1–5 (2022) Seki et al. [2018] Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Hu, J., Zhang, Y., Huo, X., Li, N., Liu, S., Yu, D., Ansermet, J.-P., Granville, S., Yu, H.: Large Anomalous Nernst Angle in Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa Thin Film. IEEE Magnetics Letters 13, 1–5 (2022) Seki et al. [2018] Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1
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Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Spiece, J., Evangeli, C., Lulla, K., Robson, A., Robinson, B., Kolosov, O.: Improving accuracy of nanothermal measurements via spatially distributed scanning thermal microscope probes. Journal of Applied Physics 124(1), 015101 (2018) Das et al. [2019] Das, R., Iguchi, R., Uchida, K.-i.: Systematic investigation of anisotropic magneto–peltier effect and anomalous ettingshausen effect in Ni thin films. Physical Review Applied 11(3), 034022 (2019) Miura et al. [2020] Miura, A., Masuda, K., Hirai, T., Iguchi, R., Seki, T., Miura, Y., Tsuchiura, H., Takanashi, K., Uchida, K.-i.: High-temperature dependence of anomalous Ettingshausen effect in SmCo55{}_{5}start_FLOATSUBSCRIPT 5 end_FLOATSUBSCRIPT-type permanent magnets. Applied Physics Letters 117(8), 082408 (2020) Hu et al. [2022] Hu, J., Zhang, Y., Huo, X., Li, N., Liu, S., Yu, D., Ansermet, J.-P., Granville, S., Yu, H.: Large Anomalous Nernst Angle in Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa Thin Film. IEEE Magnetics Letters 13, 1–5 (2022) Seki et al. [2018] Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Das, R., Iguchi, R., Uchida, K.-i.: Systematic investigation of anisotropic magneto–peltier effect and anomalous ettingshausen effect in Ni thin films. Physical Review Applied 11(3), 034022 (2019) Miura et al. [2020] Miura, A., Masuda, K., Hirai, T., Iguchi, R., Seki, T., Miura, Y., Tsuchiura, H., Takanashi, K., Uchida, K.-i.: High-temperature dependence of anomalous Ettingshausen effect in SmCo55{}_{5}start_FLOATSUBSCRIPT 5 end_FLOATSUBSCRIPT-type permanent magnets. Applied Physics Letters 117(8), 082408 (2020) Hu et al. [2022] Hu, J., Zhang, Y., Huo, X., Li, N., Liu, S., Yu, D., Ansermet, J.-P., Granville, S., Yu, H.: Large Anomalous Nernst Angle in Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa Thin Film. IEEE Magnetics Letters 13, 1–5 (2022) Seki et al. [2018] Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Miura, A., Masuda, K., Hirai, T., Iguchi, R., Seki, T., Miura, Y., Tsuchiura, H., Takanashi, K., Uchida, K.-i.: High-temperature dependence of anomalous Ettingshausen effect in SmCo55{}_{5}start_FLOATSUBSCRIPT 5 end_FLOATSUBSCRIPT-type permanent magnets. Applied Physics Letters 117(8), 082408 (2020) Hu et al. [2022] Hu, J., Zhang, Y., Huo, X., Li, N., Liu, S., Yu, D., Ansermet, J.-P., Granville, S., Yu, H.: Large Anomalous Nernst Angle in Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa Thin Film. IEEE Magnetics Letters 13, 1–5 (2022) Seki et al. [2018] Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Hu, J., Zhang, Y., Huo, X., Li, N., Liu, S., Yu, D., Ansermet, J.-P., Granville, S., Yu, H.: Large Anomalous Nernst Angle in Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa Thin Film. IEEE Magnetics Letters 13, 1–5 (2022) Seki et al. [2018] Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. 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[2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1
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B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Das, R., Iguchi, R., Uchida, K.-i.: Systematic investigation of anisotropic magneto–peltier effect and anomalous ettingshausen effect in Ni thin films. Physical Review Applied 11(3), 034022 (2019) Miura et al. [2020] Miura, A., Masuda, K., Hirai, T., Iguchi, R., Seki, T., Miura, Y., Tsuchiura, H., Takanashi, K., Uchida, K.-i.: High-temperature dependence of anomalous Ettingshausen effect in SmCo55{}_{5}start_FLOATSUBSCRIPT 5 end_FLOATSUBSCRIPT-type permanent magnets. Applied Physics Letters 117(8), 082408 (2020) Hu et al. [2022] Hu, J., Zhang, Y., Huo, X., Li, N., Liu, S., Yu, D., Ansermet, J.-P., Granville, S., Yu, H.: Large Anomalous Nernst Angle in Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa Thin Film. IEEE Magnetics Letters 13, 1–5 (2022) Seki et al. [2018] Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Miura, A., Masuda, K., Hirai, T., Iguchi, R., Seki, T., Miura, Y., Tsuchiura, H., Takanashi, K., Uchida, K.-i.: High-temperature dependence of anomalous Ettingshausen effect in SmCo55{}_{5}start_FLOATSUBSCRIPT 5 end_FLOATSUBSCRIPT-type permanent magnets. Applied Physics Letters 117(8), 082408 (2020) Hu et al. [2022] Hu, J., Zhang, Y., Huo, X., Li, N., Liu, S., Yu, D., Ansermet, J.-P., Granville, S., Yu, H.: Large Anomalous Nernst Angle in Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa Thin Film. IEEE Magnetics Letters 13, 1–5 (2022) Seki et al. [2018] Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Hu, J., Zhang, Y., Huo, X., Li, N., Liu, S., Yu, D., Ansermet, J.-P., Granville, S., Yu, H.: Large Anomalous Nernst Angle in Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa Thin Film. IEEE Magnetics Letters 13, 1–5 (2022) Seki et al. [2018] Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. 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Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. 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[2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1
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[2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Miura, A., Masuda, K., Hirai, T., Iguchi, R., Seki, T., Miura, Y., Tsuchiura, H., Takanashi, K., Uchida, K.-i.: High-temperature dependence of anomalous Ettingshausen effect in SmCo55{}_{5}start_FLOATSUBSCRIPT 5 end_FLOATSUBSCRIPT-type permanent magnets. Applied Physics Letters 117(8), 082408 (2020) Hu et al. [2022] Hu, J., Zhang, Y., Huo, X., Li, N., Liu, S., Yu, D., Ansermet, J.-P., Granville, S., Yu, H.: Large Anomalous Nernst Angle in Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa Thin Film. IEEE Magnetics Letters 13, 1–5 (2022) Seki et al. [2018] Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Hu, J., Zhang, Y., Huo, X., Li, N., Liu, S., Yu, D., Ansermet, J.-P., Granville, S., Yu, H.: Large Anomalous Nernst Angle in Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa Thin Film. IEEE Magnetics Letters 13, 1–5 (2022) Seki et al. [2018] Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1
- Miura, A., Masuda, K., Hirai, T., Iguchi, R., Seki, T., Miura, Y., Tsuchiura, H., Takanashi, K., Uchida, K.-i.: High-temperature dependence of anomalous Ettingshausen effect in SmCo55{}_{5}start_FLOATSUBSCRIPT 5 end_FLOATSUBSCRIPT-type permanent magnets. Applied Physics Letters 117(8), 082408 (2020) Hu et al. [2022] Hu, J., Zhang, Y., Huo, X., Li, N., Liu, S., Yu, D., Ansermet, J.-P., Granville, S., Yu, H.: Large Anomalous Nernst Angle in Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa Thin Film. IEEE Magnetics Letters 13, 1–5 (2022) Seki et al. [2018] Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Hu, J., Zhang, Y., Huo, X., Li, N., Liu, S., Yu, D., Ansermet, J.-P., Granville, S., Yu, H.: Large Anomalous Nernst Angle in Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa Thin Film. IEEE Magnetics Letters 13, 1–5 (2022) Seki et al. [2018] Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1
- Hu, J., Zhang, Y., Huo, X., Li, N., Liu, S., Yu, D., Ansermet, J.-P., Granville, S., Yu, H.: Large Anomalous Nernst Angle in Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa Thin Film. IEEE Magnetics Letters 13, 1–5 (2022) Seki et al. [2018] Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1
- Seki, T., Iguchi, R., Takanashi, K., Uchida, K.: Relationship between anomalous Ettingshausen effect and anomalous Nernst effect in an FePt thin film. Journal of Physics D: Applied Physics 51(25), 254001 (2018) Xu et al. [2020] Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1
- Xu, L., Li, X., Lu, X., Collignon, C., Fu, H., Koo, J., Fauqué, B., Yan, B., Zhu, Z., Behnia, K.: Finite-temperature violation of the anomalous transverse Wiedemann-Franz law. Science Advances 6(17), 3522 (2020) Seki et al. [2019] Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1
- Seki, T., Miura, A., Uchida, K.-i., Kubota, T., Takanashi, K.: Anomalous Ettingshausen effect in ferrimagnetic Co–Gd. Applied Physics Express 12(2), 023006 (2019) Sumida et al. [2020] Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1
- Sumida, K., Sakuraba, Y., Masuda, K., Kono, T., Kakoki, M., Goto, K., Zhou, W., Miyamoto, K., Miura, Y., Okuda, T., et al.: Spin-polarized Weyl cones and giant anomalous Nernst effect in ferromagnetic Heusler films. Communications Materials 1(1), 89 (2020) Nagaosa et al. [2010] Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Nagaosa, N., Sinova, J., Onoda, S., MacDonald, A.H., Ong, N.P.: Anomalous hall effect. Reviews of Modern Physics 82(2), 1539 (2010) Miyasato et al. [2007] Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1
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[2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. 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Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Miyasato, T., Abe, N., Fujii, T., Asamitsu, A., Onoda, S., Onose, Y., Nagaosa, N., Tokura, Y.: Crossover behavior of the anomalous Hall effect and anomalous Nernst effect in itinerant ferromagnets. Physical Review Letters 99(8), 086602 (2007) Sakai et al. [2018] Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1
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[2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1
- Sakai, A., Mizuta, Y.P., Nugroho, A.A., Sihombing, R., Koretsune, T., Suzuki, M.-T., Takemori, N., Ishii, R., Nishio-Hamane, D., Arita, R., et al.: Giant anomalous Nernst effect and quantum-critical scaling in a ferromagnetic semimetal. Nature Physics 14(11), 1119–1124 (2018) Guin et al. [2019] Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1
- Guin, S.N., Manna, K., Noky, J., Watzman, S.J., Fu, C., Kumar, N., Schnelle, W., Shekhar, C., Sun, Y., Gooth, J., et al.: Anomalous Nernst effect beyond the magnetization scaling relation in the ferromagnetic Heusler compound Co22{}_{2}start_FLOATSUBSCRIPT 2 end_FLOATSUBSCRIPTMnGa. npg Asia Materials 11(1), 16 (2019) Xu et al. [2020] Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1
- Xu, L., Li, X., Ding, L., Chen, T., Sakai, A., Fauqué, B., Nakatsuji, S., Zhu, Z., Behnia, K.: Anomalous transverse response of Co2MnGasubscriptCo2MnGa{\mathrm{Co}}_{2}\mathrm{MnGa}roman_Co start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT roman_MnGa and universality of the room-temperature αijA/σijAsuperscriptsubscript𝛼𝑖𝑗𝐴superscriptsubscript𝜎𝑖𝑗𝐴{\alpha}_{ij}^{A}/{\sigma}_{ij}^{A}italic_α start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT / italic_σ start_POSTSUBSCRIPT italic_i italic_j end_POSTSUBSCRIPT start_POSTSUPERSCRIPT italic_A end_POSTSUPERSCRIPT ratio across topological magnets. Phys. Rev. B 101, 180404 (2020) Spièce et al. [2021] Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1
- Spièce, J., Evangeli, C., Robson, A.J., El Sachat, A., Haenel, L., Alonso, M.I., Garriga, M., Robinson, B.J., Oehme, M., Schulze, J., et al.: Quantifying thermal transport in buried semiconductor nanostructures via cross-sectional scanning thermal microscopy. Nanoscale 13(24), 10829–10836 (2021) Gonzalez-Munoz et al. [2023] Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1
- Gonzalez-Munoz, S., Agarwal, K., Castanon, E.G., Kudrynskyi, Z.R., Kovalyuk, Z.D., Spièce, J., Kazakova, O., Patanè, A., Kolosov, O.V.: Direct measurements of anisotropic thermal transport in γ𝛾\gammaitalic_γ-inse nanolayers via cross-sectional scanning thermal microscopy. Advanced Materials Interfaces, 2300081 (2023) Spièce [2019] Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1 Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1
- Spièce, J.: Quantitative Mapping of Nanothermal Transport Via Scanning Thermal Microscopy. Springer Theses, pp. 1–153. Springer, Nature Switzerland AG (2019). https://doi.org/10.1007/978-3-030-30813-1
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