Non-linear Hall Effects: Mechanisms and Materials (2401.02282v2)
Abstract: This review presents recent breakthroughs in the realm of nonlinear Hall effects, emphasizing central theoretical foundations and recent experimental progress. We elucidate the quantum origin of the second-order Hall response, focusing on the Berry curvature dipole, which may arise in inversion symmetry broken systems. The theoretical framework also reveals the impact of disorder scattering effects on the nonlinear response. We further discuss the possibility of obtaining nonlinear Hall responses beyond the second order. We examine symmetry-based indicators essential for the manifestation of nonlinear Hall effects in time-reversal symmetric crystals, setting the stage for a detailed exploration of theoretical models and candidate materials predicted to exhibit sizable and tunable Berry curvature dipole. We summarize groundbreaking experimental reports on measuring both intrinsic and extrinsic nonlinear Hall effects across diverse material classes. Finally, we highlight some of the other intriguing nonlinear effects, including nonlinear planar Hall, nonlinear anomalous Hall, and nonlinear spin and valley Hall effects. We conclude with an outlook on pivotal open questions and challenges, marking the trajectory of this rapidly evolving field.
- E. H. Hall et al., American Journal of Mathematics 2, 287 (1879).
- C. Chien, The Hall effect and its applications (Springer Science & Business Media, 2013).
- E. Hall, Proceedings of the Physical Society of London 4, 325 (1880).
- B. Huckestein, Reviews of Modern Physics 67, 357 (1995).
- K. Von Klitzing, Philosophical Transactions of the Royal Society A: Mathematical, Physical and Engineering Sciences 363, 2203 (2005).
- I. Sodemann and L. Fu, Physical review letters 115, 216806 (2015).
- C. Ortix, Advanced Quantum Technologies 4, 2100056 (2021).
- M. Papaj and L. Fu, Physical review letters 123, 216802 (2019).
- S. Sekh and I. Mandal, The European Physical Journal Plus 137, 736 (2022a).
- J. E. Moore and J. Orenstein, Physical review letters 105, 026805 (2010).
- C.-Z. Chang and M. Li, Journal of Physics: Condensed Matter 28, 123002 (2016).
- O. Matsyshyn and I. Sodemann, Physical review letters 123, 246602 (2019).
- E. Blount, Solid State Physics, Vol. 13 (Academic Press, New York, 1962) p. 305–73.
- M. Z. Hasan and C. L. Kane, Reviews of modern physics 82, 3045 (2010).
- J. Cayssol and J.-N. Fuchs, Journal of Physics: Materials 4, 034007 (2021).
- F. Haldane, Physical review letters 93, 206602 (2004).
- G. D. Mahan, Many-particle physics (Springer Science & Business Media, 2000).
- N. Bloembergen, Reviews of Modern Physics 54, 685 (1982).
- J. Sipe and E. Ghahramani, Physical Review B 48, 11705 (1993).
- Y. Michishita and R. Peters, Physical Review B 103, 195133 (2021).
- Y. Michishita and N. Nagaosa, Physical Review B 106, 125114 (2022).
- O. Pal and T. K. Ghosh, Physical Review B 109, 035202 (2024).
- S. Saha and A. Narayan, Journal of Physics: Condensed Matter 35, 485301 (2023).
- S. Roy and A. Narayan, Journal of Physics: Condensed Matter 34, 385301 (2022).
- N. Sinitsyn, Journal of Physics: Condensed Matter 20, 023201 (2007).
- S. Nandy and I. Sodemann, Physical Review B 100, 195117 (2019).
- P. A. Lee and T. Ramakrishnan, Reviews of modern physics 57, 287 (1985).
- F. Evers and A. D. Mirlin, Reviews of Modern Physics 80, 1355 (2008).
- C. W. J. Beenakker, Rev. Mod. Phys. 69, 731 (1997).
- P. A. Lee and A. D. Stone, Physical review letters 55, 1622 (1985).
- Y. Tokura and N. Nagaosa, Nature communications 9, 3740 (2018).
- V. I. Belinicher and B. I. Sturman, Soviet Physics Uspekhi 23, 199 (1980).
- L. Onsager, Physical review 37, 405 (1931).
- C. L. Kane and E. J. Mele, Physical review letters 95, 226801 (2005).
- B. A. Bernevig and S.-C. Zhang, Physical review letters 96, 106802 (2006).
- S. Oh, Science 340, 153 (2013).
- S. Tsirkin and I. Souza, SciPost Physics Core 5, 039 (2022).
- A. Burkov and L. Balents, Physical review letters 107, 127205 (2011).
- A. K. Geim and K. S. Novoselov, Nature materials 6, 183 (2007).
- A. K. Geim, science 324, 1530 (2009).
- G. W. Semenoff, Physical Review Letters 53, 2449 (1984).
- E. McCann and M. Koshino, Reports on Progress in physics 76, 056503 (2013).
- E. McCann and V. I. Fal’ko, Physical review letters 96, 086805 (2006).
- N. Kheirabadi and A. Langari, Physical Review B 106, 245143 (2022).
- R. Bistritzer and A. H. MacDonald, Proceedings of the National Academy of Sciences 108, 12233 (2011).
- E. Y. Andrei and A. H. MacDonald, Nature materials 19, 1265 (2020).
- Z.-D. Song and B. A. Bernevig, Physical review letters 129, 047601 (2022).
- S. Ng and M. Pumera, Advanced Materials 35, 2207196 (2023).
- M. Ezawa, Journal of the Physical Society of Japan 84, 121003 (2015).
- Z. He and H. Weng, npj Quantum Materials 6, 101 (2021).
- H. Wang and X. Qian, Science advances 5, eaav9743 (2019a).
- N. B. Joseph and A. Narayan, Journal of Physics: Condensed Matter 33, 465001 (2021).
- H. Wang and X. Qian, npj Computational Materials 5, 119 (2019b).
- Z.-Y. Zhuang and Z. Yan, Physical Review B 107, L161102 (2023).
- A. Kiswandhi and T. Osada, Journal of Physics: Condensed Matter 34, 105602 (2021).
- H. Watanabe and Y. Yanase, Physical Review X 11, 011001 (2021).
- A. Bharti and G. Dixit, Physical Review B 107, 224308 (2023).
- H. Rostami and M. Polini, Physical Review B 97, 195151 (2018).
- L. Golub and E. Ivchenko, Physical Review B 98, 075305 (2018).
- L. Z. Tan and A. M. Rappe, Physical Review B 100, 085102 (2019).
- H. Wang and X. Qian, npj Computational Materials 6, 199 (2020).
- Y. Gao and F. Zhang, Physical Review B 103, L041301 (2021).
- W. Kraut and R. von Baltz, Physical Review B 19, 1548 (1979).
- R. von Baltz and W. Kraut, Physical Review B 23, 5590 (1981).
- T. Morimoto and N. Nagaosa, Science advances 2, e1501524 (2016).
- J. Ahn, Physical Review B 107, L201112 (2023).
- J. Sipe and A. Shkrebtii, Physical Review B 61, 5337 (2000).
- K. V. Shanavas, Physical Review B 93, 045108 (2016).
- M. Tonouchi, Nature photonics 1, 97 (2007).
- F. Sizov and A. Rogalski, Progress in quantum electronics 34, 278 (2010).
- Y. Zhang and L. Fu, Proceedings of the National Academy of Sciences 118, e2100736118 (2021).
- I. Mandal, International Journal of Modern Physics B , 2450216 (2023).
- S. Sekh and I. Mandal, Physical Review B 105, 235403 (2022b).
- H. Rostami and V. Juričić, Physical Review Research 2, 013069 (2020).
- G. Sundaram and Q. Niu, Physical Review B 59, 14915 (1999).
- S. Bhowal and N. A. Spaldin, Annual Review of Materials Research 53, 53 (2023).
Collections
Sign up for free to add this paper to one or more collections.
Paper Prompts
Sign up for free to create and run prompts on this paper using GPT-5.