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Large N expansion of mass deformed ABJM matrix model: M2-instanton condensation and beyond

Published 21 Jan 2024 in hep-th, math-ph, and math.MP | (2401.11484v3)

Abstract: We find new bilinear relations for the partition functions of U(N)k x U(N+M){-k} ABJ theory with two parameter mass deformation (m_1,m_2), which generalize the q-Toda-like equation found previously for m_1=m_2. By combining the bilinear relations with the Seiberg-like dualities and the duality cascade relations, we can determine the exact values of the partition functions recursively with respect to N. This method is more efficient than the exact calculation by the standard TBA-like approach in the Fermi gas formalism. As an application we study the large N asymptotics of the partition function with the mass parameters in the supercritical regime where the large N expansion obtained for small mass parameters is invalid.

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References (186)
  1. J. M. Maldacena, “The Large N limit of superconformal field theories and supergravity,” Adv.Theor.Math.Phys. 2 (1998) 231–252, arXiv:hep-th/9711200 [hep-th].
  2. K. Hosomichi, K.-M. Lee, S. Lee, S. Lee, and J. Park, “N=4 Superconformal Chern-Simons Theories with Hyper and Twisted Hyper Multiplets,” JHEP 07 (2008) 091, arXiv:0805.3662 [hep-th].
  3. O. Aharony, O. Bergman, D. L. Jafferis, and J. Maldacena, “N=6 superconformal Chern-Simons-matter theories, M2-branes and their gravity duals,” JHEP 0810 (2008) 091, arXiv:0806.1218 [hep-th].
  4. O. Aharony, O. Bergman, and D. L. Jafferis, “Fractional M2-branes,” JHEP 11 (2008) 043, arXiv:0807.4924 [hep-th].
  5. S. Mukhi and C. Papageorgakis, “M2 to D2,” JHEP 05 (2008) 085, arXiv:0803.3218 [hep-th].
  6. Y. Pang and T. Wang, “From N M2’s to N D2’s,” Phys. Rev. D 78 (2008) 125007, arXiv:0807.1444 [hep-th].
  7. I. Jeon, N. Lambert, and P. Richmond, “Periodic Arrays of M2-Branes,” JHEP 11 (2012) 100, arXiv:1206.6699 [hep-th].
  8. A. Gustavsson and S.-J. Rey, “Enhanced N=8 Supersymmetry of ABJM Theory on R**8 and R**8/Z(2),” arXiv:0906.3568 [hep-th].
  9. O.-K. Kwon, P. Oh, and J. Sohn, “Notes on Supersymmetry Enhancement of ABJM Theory,” JHEP 08 (2009) 093, arXiv:0906.4333 [hep-th].
  10. D. Bashkirov and A. Kapustin, “Supersymmetry enhancement by monopole operators,” JHEP 05 (2011) 015, arXiv:1007.4861 [hep-th].
  11. D. Bashkirov and A. Kapustin, “Dualities between N = 8 superconformal field theories in three dimensions,” JHEP 05 (2011) 074, arXiv:1103.3548 [hep-th].
  12. K. Jensen and A. Karch, “ABJM Mirrors and a Duality of Dualities,” JHEP 09 (2009) 004, arXiv:0906.3013 [hep-th].
  13. N. Lambert and C. Papageorgakis, “Relating U(N)xU(N) to SU(N)xSU(N) Chern-Simons Membrane theories,” JHEP 1004 (2010) 104, arXiv:1001.4779 [hep-th].
  14. A. Basu and J. A. Harvey, “The M2-M5 brane system and a generalized Nahm’s equation,” Nucl. Phys. B 713 (2005) 136–150, arXiv:hep-th/0412310.
  15. A. Gustavsson, “Selfdual strings and loop space Nahm equations,” JHEP 0804 (2008) 083, arXiv:0802.3456 [hep-th].
  16. H. Nastase, C. Papageorgakis, and S. Ramgoolam, “The Fuzzy S**2 structure of M2-M5 systems in ABJM membrane theories,” JHEP 05 (2009) 123, arXiv:0903.3966 [hep-th].
  17. S. Terashima and F. Yagi, “M5-brane Solution in ABJM Theory and Three-algebra,” JHEP 12 (2009) 059, arXiv:0909.3101 [hep-th].
  18. N. Lambert and C. Papageorgakis, “Nonabelian (2,0) Tensor Multiplets and 3-algebras,” JHEP 08 (2010) 083, arXiv:1007.2982 [hep-th].
  19. T. Nosaka and S. Terashima, “M5-branes in ABJM theory and Nahm equation,” Phys. Rev. D 86 (2012) 125027, arXiv:1208.1108 [hep-th].
  20. K. Sakai and S. Terashima, “Integrability of BPS equations in ABJM theory,” JHEP 11 (2013) 002, arXiv:1308.3583 [hep-th].
  21. V. Pestun, “Localization of gauge theory on a four-sphere and supersymmetric Wilson loops,” Commun. Math. Phys. 313 (2012) 71–129, arXiv:0712.2824 [hep-th].
  22. A. Kapustin, B. Willett, and I. Yaakov, “Nonperturbative Tests of Three-Dimensional Dualities,” JHEP 10 (2010) 013, arXiv:1003.5694 [hep-th].
  23. D. L. Jafferis, “The Exact Superconformal R-Symmetry Extremizes Z,” JHEP 05 (2012) 159, arXiv:1012.3210 [hep-th].
  24. N. Hama, K. Hosomichi, and S. Lee, “Notes on SUSY Gauge Theories on Three-Sphere,” JHEP 03 (2011) 127, arXiv:1012.3512 [hep-th].
  25. N. Hama, K. Hosomichi, and S. Lee, “SUSY Gauge Theories on Squashed Three-Spheres,” JHEP 05 (2011) 014, arXiv:1102.4716 [hep-th].
  26. I. R. Klebanov and A. A. Tseytlin, “Near extremal black hole entropy and fluctuating three-branes,” Nucl. Phys. B 479 (1996) 319–335, arXiv:hep-th/9607107.
  27. N. Drukker, M. Marino, and P. Putrov, “From weak to strong coupling in ABJM theory,” Commun. Math. Phys. 306 (2011) 511–563, arXiv:1007.3837 [hep-th].
  28. C. P. Herzog, I. R. Klebanov, S. S. Pufu, and T. Tesileanu, “Multi-Matrix Models and Tri-Sasaki Einstein Spaces,” Phys. Rev. D 83 (2011) 046001, arXiv:1011.5487 [hep-th].
  29. R. C. Santamaria, M. Marino, and P. Putrov, “Unquenched flavor and tropical geometry in strongly coupled Chern-Simons-matter theories,” JHEP 10 (2011) 139, arXiv:1011.6281 [hep-th].
  30. N. Drukker, M. Marino, and P. Putrov, “Nonperturbative aspects of ABJM theory,” JHEP 11 (2011) 141, arXiv:1103.4844 [hep-th].
  31. H. Fuji, S. Hirano, and S. Moriyama, “Summing Up All Genus Free Energy of ABJM Matrix Model,” JHEP 08 (2011) 001, arXiv:1106.4631 [hep-th].
  32. M. Hanada, M. Honda, Y. Honma, J. Nishimura, S. Shiba, and Y. Yoshida, “Numerical studies of the ABJM theory for arbitrary N at arbitrary coupling constant,” JHEP 05 (2012) 121, arXiv:1202.5300 [hep-th].
  33. M. Honda, M. Hanada, Y. Honma, J. Nishimura, S. Shiba, and Y. Yoshida, “Monte Carlo studies of 3d N=6 SCFT via localization method,” PoS LATTICE2012 (2012) 233, arXiv:1211.6844 [hep-lat].
  34. A. Amariti, C. Klare, and M. Siani, “The Large N Limit of Toric Chern-Simons Matter Theories and Their Duals,” JHEP 10 (2012) 019, arXiv:1111.1723 [hep-th].
  35. D. Gang, C. Hwang, S. Kim, and J. Park, “Tests of AdS44{}_{4}start_FLOATSUBSCRIPT 4 end_FLOATSUBSCRIPT/CFT33{}_{3}start_FLOATSUBSCRIPT 3 end_FLOATSUBSCRIPT correspondence for 𝒩=2𝒩2\mathcal{N}=2caligraphic_N = 2 chiral-like theory,” JHEP 02 (2012) 079, arXiv:1111.4529 [hep-th].
  36. D. Martelli and J. Sparks, “The large N limit of quiver matrix models and Sasaki-Einstein manifolds,” Phys. Rev. D 84 (2011) 046008, arXiv:1102.5289 [hep-th].
  37. S. Cheon, H. Kim, and N. Kim, “Calculating the partition function of N=2 Gauge theories on S3superscript𝑆3S^{3}italic_S start_POSTSUPERSCRIPT 3 end_POSTSUPERSCRIPT and AdS/CFT correspondence,” JHEP 05 (2011) 134, arXiv:1102.5565 [hep-th].
  38. A. Amariti and S. Franco, “Free Energy vs Sasaki-Einstein Volume for Infinite Families of M2-Brane Theories,” JHEP 09 (2012) 034, arXiv:1204.6040 [hep-th].
  39. J. T. Liu and X. Zhang, “The large-N𝑁Nitalic_N partition function for non-parity-invariant Chern-Simons-matter theories,” JHEP 12 (2020) 007, arXiv:2008.09642 [hep-th].
  40. D. R. Gulotta, J. P. Ang, and C. P. Herzog, “Matrix Models for Supersymmetric Chern-Simons Theories with an ADE Classification,” JHEP 01 (2012) 132, arXiv:1111.1744 [hep-th].
  41. P. M. Crichigno, C. P. Herzog, and D. Jain, “Free Energy of D^nsubscript^𝐷𝑛\hat{D}_{n}over^ start_ARG italic_D end_ARG start_POSTSUBSCRIPT italic_n end_POSTSUBSCRIPT Quiver Chern-Simons Theories,” JHEP 03 (2013) 039, arXiv:1211.1388 [hep-th].
  42. A. Amariti, M. Fazzi, N. Mekareeya, and A. Nedelin, “New 3d 𝒩=2𝒩2\mathcal{N}=2caligraphic_N = 2 SCFT’s with N3/2superscript𝑁32N^{3/2}italic_N start_POSTSUPERSCRIPT 3 / 2 end_POSTSUPERSCRIPT scaling,” JHEP 12 (2019) 111, arXiv:1903.02586 [hep-th].
  43. D. R. Gulotta, C. P. Herzog, and T. Nishioka, “The ABCDEF’s of Matrix Models for Supersymmetric Chern-Simons Theories,” JHEP 04 (2012) 138, arXiv:1201.6360 [hep-th].
  44. D. L. Jafferis, I. R. Klebanov, S. S. Pufu, and B. R. Safdi, “Towards the F-Theorem: N=2 Field Theories on the Three-Sphere,” JHEP 06 (2011) 102, arXiv:1103.1181 [hep-th].
  45. D. Jain, “Deconstructing Deformed D-quivers,” arXiv:1512.08955 [hep-th].
  46. Y. Imamura and D. Yokoyama, “N=2 supersymmetric theories on squashed three-sphere,” Phys. Rev. D 85 (2012) 025015, arXiv:1109.4734 [hep-th].
  47. L. F. Alday, M. Fluder, and J. Sparks, “The Large N limit of M2-branes on Lens spaces,” JHEP 10 (2012) 057, arXiv:1204.1280 [hep-th].
  48. M. Mariño and P. Putrov, “Interacting fermions and N=2 Chern-Simons-matter theories,” JHEP 11 (2013) 199, arXiv:1206.6346 [hep-th].
  49. Y. Hatsuda, “ABJM on ellipsoid and topological strings,” JHEP 07 (2016) 026, arXiv:1601.02728 [hep-th].
  50. M. Marino and P. Putrov, “ABJM theory as a Fermi gas,” J. Stat. Mech. 1203 (2012) P03001, arXiv:1110.4066 [hep-th].
  51. H. Awata, S. Hirano, and M. Shigemori, “The Partition Function of ABJ Theory,” PTEP 2013 (2013) 053B04, arXiv:1212.2966 [hep-th].
  52. M. Honda, “Direct derivation of ”mirror” ABJ partition function,” JHEP 12 (2013) 046, arXiv:1310.3126 [hep-th].
  53. S. Matsumoto and S. Moriyama, “ABJ Fractional Brane from ABJM Wilson Loop,” JHEP 03 (2014) 079, arXiv:1310.8051 [hep-th].
  54. P. Putrov and M. Yamazaki, “Exact ABJM Partition Function from TBA,” Mod. Phys. Lett. A 27 (2012) 1250200, arXiv:1207.5066 [hep-th].
  55. Y. Hatsuda, S. Moriyama, and K. Okuyama, “Instanton Effects in ABJM Theory from Fermi Gas Approach,” JHEP 01 (2013) 158, arXiv:1211.1251 [hep-th].
  56. F. Calvo and M. Marino, “Membrane instantons from a semiclassical TBA,” JHEP 05 (2013) 006, arXiv:1212.5118 [hep-th].
  57. Y. Hatsuda, S. Moriyama, and K. Okuyama, “Instanton Bound States in ABJM Theory,” JHEP 05 (2013) 054, arXiv:1301.5184 [hep-th].
  58. Y. Hatsuda, S. Moriyama, and K. Okuyama, “Exact Results on the ABJM Fermi Gas,” JHEP 10 (2012) 020, arXiv:1207.4283 [hep-th].
  59. M. Mezei and S. S. Pufu, “Three-sphere free energy for classical gauge groups,” JHEP 02 (2014) 037, arXiv:1312.0920 [hep-th].
  60. A. Grassi and M. Marino, “M-theoretic matrix models,” JHEP 02 (2015) 115, arXiv:1403.4276 [hep-th].
  61. M. Honda and S. Moriyama, “Instanton Effects in Orbifold ABJM Theory,” JHEP 08 (2014) 091, arXiv:1404.0676 [hep-th].
  62. Y. Hatsuda and K. Okuyama, “Probing non-perturbative effects in M-theory,” JHEP 10 (2014) 158, arXiv:1407.3786 [hep-th].
  63. S. Moriyama and T. Nosaka, “Partition Functions of Superconformal Chern-Simons Theories from Fermi Gas Approach,” JHEP 11 (2014) 164, arXiv:1407.4268 [hep-th].
  64. S. Moriyama and T. Nosaka, “ABJM membrane instanton from a pole cancellation mechanism,” Phys. Rev. D 92 no. 2, (2015) 026003, arXiv:1410.4918 [hep-th].
  65. Y. Hatsuda, M. Honda, and K. Okuyama, “Large N non-perturbative effects in 𝒩=4𝒩4\mathcal{N}=4caligraphic_N = 4 superconformal Chern-Simons theories,” JHEP 09 (2015) 046, arXiv:1505.07120 [hep-th].
  66. S. Moriyama and T. Suyama, “Instanton Effects in Orientifold ABJM Theory,” JHEP 03 (2016) 034, arXiv:1511.01660 [hep-th].
  67. M. Honda, “Exact relations between M2-brane theories with and without Orientifolds,” JHEP 06 (2016) 123, arXiv:1512.04335 [hep-th].
  68. K. Okuyama, “Orientifolding of the ABJ Fermi gas,” JHEP 03 (2016) 008, arXiv:1601.03215 [hep-th].
  69. S. Moriyama and T. Suyama, “Orthosymplectic Chern-Simons Matrix Model and Chirality Projection,” JHEP 04 (2016) 132, arXiv:1601.03846 [hep-th].
  70. S. Moriyama and T. Nosaka, “Orientifold ABJM Matrix Model: Chiral Projections and Worldsheet Instantons,” JHEP 06 (2016) 068, arXiv:1603.00615 [hep-th].
  71. S. Bhattacharyya, A. Grassi, M. Marino, and A. Sen, “A One-Loop Test of Quantum Supergravity,” Class. Quant. Grav. 31 (2014) 015012, arXiv:1210.6057 [hep-th].
  72. J. T. Liu and W. Zhao, “One-loop supergravity on AdS4×S7/ℤksubscriptAdS4superscript𝑆7subscriptℤ𝑘\mathrm{AdS}_{4}\times S^{7}/\mathbb{Z}_{k}roman_AdS start_POSTSUBSCRIPT 4 end_POSTSUBSCRIPT × italic_S start_POSTSUPERSCRIPT 7 end_POSTSUPERSCRIPT / roman_ℤ start_POSTSUBSCRIPT italic_k end_POSTSUBSCRIPT and comparison with ABJM theory,” JHEP 11 (2016) 099, arXiv:1609.02558 [hep-th].
  73. N. Bobev, M. David, J. Hong, V. Reys, and X. Zhang, “A compendium of logarithmic corrections in AdS/CFT,” arXiv:2312.08909 [hep-th].
  74. M. Beccaria and A. A. Tseytlin, “Comments on ABJM free energy on S3 at large N and perturbative expansions in M-theory and string theory,” Nucl. Phys. B 994 (2023) 116286, arXiv:2306.02862 [hep-th].
  75. N. Bobev, A. M. Charles, K. Hristov, and V. Reys, “The Unreasonable Effectiveness of Higher-Derivative Supergravity in AdS44{}_{4}start_FLOATSUBSCRIPT 4 end_FLOATSUBSCRIPT Holography,” Phys. Rev. Lett. 125 no. 13, (2020) 131601, arXiv:2006.09390 [hep-th].
  76. N. Bobev, A. M. Charles, K. Hristov, and V. Reys, “Higher-derivative supergravity, AdS44{}_{4}start_FLOATSUBSCRIPT 4 end_FLOATSUBSCRIPT holography, and black holes,” JHEP 08 (2021) 173, arXiv:2106.04581 [hep-th].
  77. K. Hristov and V. Reys, “Factorization of log-corrections in AdS44{}_{4}start_FLOATSUBSCRIPT 4 end_FLOATSUBSCRIPT/CFT33{}_{3}start_FLOATSUBSCRIPT 3 end_FLOATSUBSCRIPT from supergravity localization,” JHEP 12 (2021) 031, arXiv:2107.12398 [hep-th].
  78. K. Hristov, “4d 𝒩𝒩\mathcal{N}caligraphic_N = 2 supergravity observables from Nekrasov-like partition functions,” JHEP 02 (2022) 079, arXiv:2111.06903 [hep-th].
  79. N. Bobev, J. Hong, and V. Reys, “Large N Partition Functions, Holography, and Black Holes,” Phys. Rev. Lett. 129 no. 4, (2022) 041602, arXiv:2203.14981 [hep-th].
  80. K. Hristov, “ABJM at finite N via 4d supergravity,” JHEP 10 (2022) 190, arXiv:2204.02992 [hep-th].
  81. N. Bobev, J. Hong, and V. Reys, “Large N partition functions of the ABJM theory,” JHEP 02 (2023) 020, arXiv:2210.09318 [hep-th].
  82. N. Bobev, J. Hong, and V. Reys, “Large N partition functions of 3d holographic SCFTs,” JHEP 08 (2023) 119, arXiv:2304.01734 [hep-th].
  83. F. F. Gautason, V. G. M. Puletti, and J. van Muiden, “Quantized strings and instantons in holography,” JHEP 08 (2023) 218, arXiv:2304.12340 [hep-th].
  84. M. Beccaria, S. Giombi, and A. A. Tseytlin, “Instanton contributions to the ABJM free energy from quantum M2 branes,” arXiv:2307.14112 [hep-th].
  85. A. Dabholkar, N. Drukker, and J. Gomes, “Localization in supergravity and quantum A⁢d⁢S4/C⁢F⁢T3𝐴𝑑subscript𝑆4𝐶𝐹subscript𝑇3AdS_{4}/CFT_{3}italic_A italic_d italic_S start_POSTSUBSCRIPT 4 end_POSTSUBSCRIPT / italic_C italic_F italic_T start_POSTSUBSCRIPT 3 end_POSTSUBSCRIPT holography,” JHEP 10 (2014) 090, arXiv:1406.0505 [hep-th].
  86. P. Caputa and S. Hirano, “Airy Function and 4d Quantum Gravity,” JHEP 06 (2018) 106, arXiv:1804.00942 [hep-th].
  87. N. B. Agmon, S. M. Chester, and S. S. Pufu, “A new duality between 𝒩𝒩\mathcal{N}caligraphic_N = 8 superconformal field theories in three dimensions,” JHEP 06 (2018) 005, arXiv:1708.07861 [hep-th].
  88. N. B. Agmon, S. M. Chester, and S. S. Pufu, “Solving M-theory with the Conformal Bootstrap,” JHEP 06 (2018) 159, arXiv:1711.07343 [hep-th].
  89. S. M. Chester, S. S. Pufu, and X. Yin, “The M-Theory S-Matrix From ABJM: Beyond 11D Supergravity,” JHEP 08 (2018) 115, arXiv:1804.00949 [hep-th].
  90. D. J. Binder, S. M. Chester, and S. S. Pufu, “Absence of D4⁢R4superscript𝐷4superscript𝑅4D^{4}R^{4}italic_D start_POSTSUPERSCRIPT 4 end_POSTSUPERSCRIPT italic_R start_POSTSUPERSCRIPT 4 end_POSTSUPERSCRIPT in M-Theory From ABJM,” JHEP 04 (2020) 052, arXiv:1808.10554 [hep-th].
  91. D. J. Binder, S. M. Chester, and S. S. Pufu, “AdS44{}_{4}start_FLOATSUBSCRIPT 4 end_FLOATSUBSCRIPT/CFT33{}_{3}start_FLOATSUBSCRIPT 3 end_FLOATSUBSCRIPT from weak to strong string coupling,” JHEP 01 (2020) 034, arXiv:1906.07195 [hep-th].
  92. N. B. Agmon, S. M. Chester, and S. S. Pufu, “The M-theory Archipelago,” JHEP 02 (2020) 010, arXiv:1907.13222 [hep-th].
  93. S. M. Chester, R. R. Kalloor, and A. Sharon, “3d 𝒩𝒩\mathcal{N}caligraphic_N = 4 OPE coefficients from Fermi gas,” JHEP 07 (2020) 041, arXiv:2004.13603 [hep-th].
  94. D. J. Binder, S. M. Chester, M. Jerdee, and S. S. Pufu, “The 3d 𝒩𝒩\mathcal{N}caligraphic_N = 6 bootstrap: from higher spins to strings to membranes,” JHEP 05 (2021) 083, arXiv:2011.05728 [hep-th].
  95. L. F. Alday, S. M. Chester, and H. Raj, “ABJM at strong coupling from M-theory, localization, and Lorentzian inversion,” JHEP 02 (2022) 005, arXiv:2107.10274 [hep-th].
  96. L. F. Alday, S. M. Chester, and H. Raj, “M-theory on AdS4×S7subscriptAdS4superscript𝑆7\text{AdS}_{4}\times S^{7}AdS start_POSTSUBSCRIPT 4 end_POSTSUBSCRIPT × italic_S start_POSTSUPERSCRIPT 7 end_POSTSUPERSCRIPT at 1-loop and beyond,” JHEP 11 (2022) 091, arXiv:2207.11138 [hep-th].
  97. S. M. Chester, S. S. Pufu, Y. Wang, and X. Yin, “Bootstrapping M-theory Orbifolds,” arXiv:2312.13112 [hep-th].
  98. K. Hosomichi, K.-M. Lee, S. Lee, S. Lee, and J. Park, “N=5,6 Superconformal Chern-Simons Theories and M2-branes on Orbifolds,” JHEP 09 (2008) 002, arXiv:0806.4977 [hep-th].
  99. J. Gomis, D. Rodriguez-Gomez, M. Van Raamsdonk, and H. Verlinde, “A Massive Study of M2-brane Proposals,” JHEP 09 (2008) 113, arXiv:0807.1074 [hep-th].
  100. R. C. Myers, “Dielectric branes,” JHEP 12 (1999) 022, arXiv:hep-th/9910053.
  101. L. Anderson and K. Zarembo, “Quantum Phase Transitions in Mass-Deformed ABJM Matrix Model,” JHEP 09 (2014) 021, arXiv:1406.3366 [hep-th].
  102. L. Anderson and J. G. Russo, “ABJM Theory with mass and FI deformations and Quantum Phase Transitions,” JHEP 05 (2015) 064, arXiv:1502.06828 [hep-th].
  103. T. Nosaka, K. Shimizu, and S. Terashima, “Large N behavior of mass deformed ABJM theory,” JHEP 03 (2016) 063, arXiv:1512.00249 [hep-th].
  104. T. Nosaka, K. Shimizu, and S. Terashima, “Mass Deformed ABJM Theory on Three Sphere in Large N limit,” JHEP 03 (2017) 121, arXiv:1608.02654 [hep-th].
  105. T. Nosaka, “Instanton effects in ABJM theory with general R-charge assignments,” JHEP 03 (2016) 059, arXiv:1512.02862 [hep-th].
  106. M. Honda, T. Nosaka, K. Shimizu, and S. Terashima, “Supersymmetry Breaking in a Large N𝑁Nitalic_N Gauge Theory with Gravity Dual,” JHEP 03 (2019) 159, arXiv:1807.08874 [hep-th].
  107. G. Bonelli, A. Grassi, and A. Tanzini, “Quantum curves and q𝑞qitalic_q-deformed Painlevé equations,” Lett. Math. Phys. 109 no. 9, (2019) 1961–2001, arXiv:1710.11603 [hep-th].
  108. Y. Hatsuda, M. Marino, S. Moriyama, and K. Okuyama, “Non-perturbative effects and the refined topological string,” JHEP 09 (2014) 168, arXiv:1306.1734 [hep-th].
  109. M. Honda and K. Okuyama, “Exact results on ABJ theory and the refined topological string,” JHEP 08 (2014) 148, arXiv:1405.3653 [hep-th].
  110. J. Kallen, “The spectral problem of the ABJ Fermi gas,” JHEP 10 (2015) 029, arXiv:1407.0625 [hep-th].
  111. A. Grassi, Y. Hatsuda, and M. Marino, “Topological Strings from Quantum Mechanics,” Annales Henri Poincare 17 no. 11, (2016) 3177–3235, arXiv:1410.3382 [hep-th].
  112. S. Codesido, A. Grassi, and M. Marino, “Spectral Theory and Mirror Curves of Higher Genus,” Annales Henri Poincare 18 no. 2, (2017) 559–622, arXiv:1507.02096 [hep-th].
  113. J. Kallen and M. Marino, “Instanton Effects and Quantum Spectral Curves,” Annales Henri Poincare 17 no. 5, (2016) 1037–1074, arXiv:1308.6485 [hep-th].
  114. M.-x. Huang and X.-f. Wang, “Topological Strings and Quantum Spectral Problems,” JHEP 09 (2014) 150, arXiv:1406.6178 [hep-th].
  115. X.-f. Wang, X. Wang, and M.-x. Huang, “A Note on Instanton Effects in ABJM Theory,” JHEP 11 (2014) 100, arXiv:1409.4967 [hep-th].
  116. S. Codesido, A. Grassi, and M. Mariño, “Exact results in 𝒩=8𝒩8\mathcal{N}=8caligraphic_N = 8 Chern-Simons-matter theories and quantum geometry,” JHEP 07 (2015) 011, arXiv:1409.1799 [hep-th].
  117. A. Grassi, Y. Hatsuda, and M. Marino, “Quantization conditions and functional equations in ABJ(M) theories,” J. Phys. A 49 no. 11, (2016) 115401, arXiv:1410.7658 [hep-th].
  118. S. Moriyama and T. Nosaka, “Exact Instanton Expansion of Superconformal Chern-Simons Theories from Topological Strings,” JHEP 05 (2015) 022, arXiv:1412.6243 [hep-th].
  119. M. Marino and S. Zakany, “Matrix Models from Operators and Topological Strings,” Annales Henri Poincare 17 no. 5, (2016) 1075–1108, arXiv:1502.02958 [hep-th].
  120. Y. Hatsuda, “Spectral zeta function and non-perturbative effects in ABJM Fermi-gas,” JHEP 11 (2015) 086, arXiv:1503.07883 [hep-th].
  121. R. Kashaev, M. Marino, and S. Zakany, “Matrix Models from Operators and Topological Strings, 2,” Annales Henri Poincare 17 no. 10, (2016) 2741–2781, arXiv:1505.02243 [hep-th].
  122. K. Okuyama and S. Zakany, “TBA-like integral equations from quantized mirror curves,” JHEP 03 (2016) 101, arXiv:1512.06904 [hep-th].
  123. G. Bonelli, A. Grassi, and A. Tanzini, “Seiberg–Witten theory as a Fermi gas,” Lett. Math. Phys. 107 no. 1, (2017) 1–30, arXiv:1603.01174 [hep-th].
  124. A. Grassi, “Spectral determinants and quantum theta functions,” J. Phys. A 49 no. 50, (2016) 505401, arXiv:1604.06786 [hep-th].
  125. S. Codesido, J. Gu, and M. Marino, “Operators and higher genus mirror curves,” JHEP 02 (2017) 092, arXiv:1609.00708 [hep-th].
  126. G. Bonelli, A. Grassi, and A. Tanzini, “New results in 𝒩=2𝒩2\mathcal{N}=2caligraphic_N = 2 theories from non-perturbative string,” Annales Henri Poincare 19 no. 3, (2018) 743–774, arXiv:1704.01517 [hep-th].
  127. S. Moriyama, S. Nakayama, and T. Nosaka, “Instanton Effects in Rank Deformed Superconformal Chern-Simons Theories from Topological Strings,” JHEP 08 (2017) 003, arXiv:1704.04358 [hep-th].
  128. S. Moriyama, T. Nosaka, and K. Yano, “Superconformal Chern-Simons Theories from del Pezzo Geometries,” JHEP 11 (2017) 089, arXiv:1707.02420 [hep-th].
  129. A. Grassi and M. Marino, “The complex side of the TS/ST correspondence,” J. Phys. A 52 no. 5, (2019) 055402, arXiv:1708.08642 [hep-th].
  130. S. Zakany, “Quantized mirror curves and resummed WKB,” JHEP 05 (2019) 114, arXiv:1711.01099 [hep-th].
  131. S. Codesido, M. Marino, and R. Schiappa, “Non-Perturbative Quantum Mechanics from Non-Perturbative Strings,” Annales Henri Poincare 20 no. 2, (2019) 543–603, arXiv:1712.02603 [hep-th].
  132. A. Grassi and M. Mariño, “A Solvable Deformation of Quantum Mechanics,” SIGMA 15 (2019) 025, arXiv:1806.01407 [hep-th].
  133. Z. Duan, J. Gu, Y. Hatsuda, and T. Sulejmanpasic, “Instantons in the Hofstadter butterfly: difference equation, resurgence and quantum mirror curves,” JHEP 01 (2019) 079, arXiv:1806.11092 [hep-th].
  134. Y. Emery, M. Mariño, and M. Ronzani, “Resonances and PT symmetry in quantum curves,” JHEP 04 (2020) 150, arXiv:1902.08606 [hep-th].
  135. A. Grassi, J. Gu, and M. Mariño, “Non-perturbative approaches to the quantum Seiberg-Witten curve,” JHEP 07 (2020) 106, arXiv:1908.07065 [hep-th].
  136. G. Bonelli, F. Globlek, N. Kubo, T. Nosaka, and A. Tanzini, “M2-branes and 𝔮𝔮{\mathfrak{q}}fraktur_q-Painlevé equations,” Lett. Math. Phys. 112 no. 6, (2022) 109, arXiv:2202.10654 [hep-th].
  137. S. H. Katz, A. Klemm, and C. Vafa, “Geometric engineering of quantum field theories,” Nucl. Phys. B 497 (1997) 173–195, arXiv:hep-th/9609239.
  138. N. C. Leung and C. Vafa, “Branes and toric geometry,” Adv. Theor. Math. Phys. 2 (1998) 91–118, arXiv:hep-th/9711013.
  139. R. Gopakumar and C. Vafa, “M theory and topological strings. 2.,” arXiv:hep-th/9812127.
  140. T. J. Hollowood, A. Iqbal, and C. Vafa, “Matrix models, geometric engineering and elliptic genera,” JHEP 03 (2008) 069, arXiv:hep-th/0310272.
  141. H. Nakajima and K. Yoshioka, “Instanton counting on blowup. 1.,” Invent. Math. 162 (2005) 313–355, arXiv:math/0306198.
  142. H. Nakajima and K. Yoshioka, “Lectures on instanton counting,” in CRM Workshop on Algebraic Structures and Moduli Spaces. 11, 2003. arXiv:math/0311058.
  143. H. Nakajima and K. Yoshioka, “Instanton counting on blowup. II. K-theoretic partition function,” arXiv:math/0505553.
  144. C. A. Keller and J. Song, “Counting Exceptional Instantons,” JHEP 07 (2012) 085, arXiv:1205.4722 [hep-th].
  145. A. Grassi and J. Gu, “BPS relations from spectral problems and blowup equations,” Lett. Math. Phys. 109 no. 6, (2019) 1271–1302, arXiv:1609.05914 [hep-th].
  146. M. Bershtein, P. Gavrylenko, and A. Marshakov, “Cluster Toda chains and Nekrasov functions,” Theor. Math. Phys. 198 no. 2, (2019) 157–188, arXiv:1804.10145 [math-ph].
  147. M. Bershtein and A. Shchechkin, “Painlevé equations from Nakajima–Yoshioka blowup relations,” Lett. Math. Phys. 109 no. 11, (2019) 2359–2402, arXiv:1811.04050 [math-ph].
  148. J. Kim, S.-S. Kim, K.-H. Lee, K. Lee, and J. Song, “Instantons from Blow-up,” JHEP 11 (2019) 092, arXiv:1908.11276 [hep-th]. [Erratum: JHEP 06, 124 (2020)].
  149. A. Shchechkin, “Blowup relations on ℂ2/ℤ2superscriptℂ2subscriptℤ2\mathbb{C}^{2}/\mathbb{Z}_{2}roman_ℂ start_POSTSUPERSCRIPT 2 end_POSTSUPERSCRIPT / roman_ℤ start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT from Nakajima–Yoshioka blowup relations,” Teor. Mat. Fiz. 206 no. 2, (2021) 225–244, arXiv:2006.08582 [math-ph].
  150. T. Nosaka, “SU(N) q-Toda equations from mass deformed ABJM theory,” JHEP 06 (2021) 060, arXiv:2012.07211 [hep-th].
  151. A. Giveon and D. Kutasov, “Seiberg Duality in Chern-Simons Theory,” Nucl. Phys. B 812 (2009) 1–11, arXiv:0808.0360 [hep-th].
  152. B. Assel, “Hanany-Witten effect and SL(2, ℤℤ\mathbb{Z}roman_ℤ) dualities in matrix models,” JHEP 10 (2014) 117, arXiv:1406.5194 [hep-th].
  153. O. Aharony, A. Hashimoto, S. Hirano, and P. Ouyang, “D-brane Charges in Gravitational Duals of 2+1 Dimensional Gauge Theories and Duality Cascades,” JHEP 01 (2010) 072, arXiv:0906.2390 [hep-th].
  154. J. Evslin and S. Kuperstein, “ABJ(M) and Fractional M2’s with Fractional M2 Charge,” JHEP 12 (2009) 016, arXiv:0906.2703 [hep-th].
  155. M. Honda and N. Kubo, “Non-perturbative tests of duality cascades in three dimensional supersymmetric gauge theories,” JHEP 07 (2021) 012, arXiv:2010.15656 [hep-th].
  156. C. A. Tracy and H. Widom, “Fredholm determinants and the mkdv/sinh-gordon hierarchies,” Commun. Math. Phys. 179 (1996) 1–9, arXiv:solv/int/9506006.
  157. C. A. Tracy and H. Widom, “Proofs of two conjectures related to the thermodynamic Bethe ansatz,” Commun. Math. Phys. 179 (1996) 667–680, arXiv:solv-int/9509003.
  158. D. Gaiotto and E. Witten, “S-Duality of Boundary Conditions In N=4 Super Yang-Mills Theory,” Adv. Theor. Math. Phys. 13 no. 3, (2009) 721–896, arXiv:0807.3720 [hep-th].
  159. T. Nosaka and S. Yokoyama, “Complete factorization in minimal 𝒩=4𝒩4\mathcal{N}=4caligraphic_N = 4 Chern-Simons-matter theory,” JHEP 01 (2018) 001, arXiv:1706.07234 [hep-th].
  160. T. Nosaka and S. Yokoyama, “Index and duality of minimal 𝒩=4𝒩4\mathcal{N}=4caligraphic_N = 4 Chern-Simons-matter theories,” JHEP 06 (2018) 028, arXiv:1804.04639 [hep-th].
  161. A. Hanany and E. Witten, “Type IIB superstrings, BPS monopoles, and three-dimensional gauge dynamics,” Nucl.Phys. B492 (1997) 152–190, arXiv:hep-th/9611230 [hep-th].
  162. O. Bergman, A. Hanany, A. Karch, and B. Kol, “Branes and supersymmetry breaking in three-dimensional gauge theories,” JHEP 10 (1999) 036, arXiv:hep-th/9908075.
  163. T. Kitao, K. Ohta, and N. Ohta, “Three-dimensional gauge dynamics from brane configurations with (p,q)-fivebrane,” Nucl. Phys. B 539 (1999) 79–106, arXiv:hep-th/9808111.
  164. S. M. Chester, R. R. Kalloor, and A. Sharon, “Squashing, Mass, and Holography for 3d Sphere Free Energy,” JHEP 04 (2021) 244, arXiv:2102.05643 [hep-th].
  165. Y. Hatsuda and K. Okuyama, “Resummations and Non-Perturbative Corrections,” JHEP 09 (2015) 051, arXiv:1505.07460 [hep-th].
  166. A. Cagnazzo, D. Sorokin, and L. Wulff, “String instanton in AdS(4) x CP**3,” JHEP 05 (2010) 009, arXiv:0911.5228 [hep-th].
  167. S. Moriyama and T. Nosaka, “40 bilinear relations of q-Painlevé VI from 𝒩𝒩\mathcal{N}caligraphic_N = 4 super Chern-Simons theory,” JHEP 08 (2023) 191, arXiv:2305.03978 [hep-th].
  168. S. Moriyama and T. Nosaka, “Affine Symmetries for ABJM Partition Function and its Generalization,” arXiv:2312.04206 [hep-th].
  169. L. Bao, E. Pomoni, M. Taki, and F. Yagi, “M5-Branes, Toric Diagrams and Gauge Theory Duality,” JHEP 04 (2012) 105, arXiv:1112.5228 [hep-th].
  170. B. Assel, N. Drukker, and J. Felix, “Partition functions of 3d D^^𝐷\hat{D}over^ start_ARG italic_D end_ARG-quivers and their mirror duals from 1d free fermions,” JHEP 08 (2015) 071, arXiv:1504.07636 [hep-th].
  171. S. Moriyama and T. Nosaka, “Superconformal Chern-Simons Partition Functions of Affine D-type Quiver from Fermi Gas,” JHEP 09 (2015) 054, arXiv:1504.07710 [hep-th].
  172. O. Aharony, S. S. Razamat, N. Seiberg, and B. Willett, “3d dualities from 4d dualities,” JHEP 07 (2013) 149, arXiv:1305.3924 [hep-th].
  173. A. Amariti, “A note on 3D 𝒩=𝒩absent\mathcal{N}=caligraphic_N = 2 dualities: real mass flow and partition function,” JHEP 03 (2014) 064, arXiv:1309.6434 [hep-th].
  174. K. Shimizu, “Aspects of Massive Gauge Theories on Three Sphere in Infinite Mass Limit,” JHEP 01 (2019) 090, arXiv:1809.03679 [hep-th].
  175. N. Kubo and K. Nii, “3d 𝒩𝒩\mathcal{N}caligraphic_N = 3 generalized Giveon-Kutasov duality,” JHEP 04 (2022) 158, arXiv:2111.13366 [hep-th].
  176. H.-C. Kim and S. Kim, “Supersymmetric vacua of mass-deformed M2-brane theory,” Nucl. Phys. B 839 (2010) 96–111, arXiv:1001.3153 [hep-th].
  177. S. Cheon, H.-C. Kim, and S. Kim, “Holography of mass-deformed M2-branes,” arXiv:1101.1101 [hep-th].
  178. D. Jang, Y. Kim, O.-K. Kwon, and D. D. Tolla, “Exact Holography of the Mass-deformed M2-brane Theory,” Eur. Phys. J. C 77 no. 5, (2017) 342, arXiv:1610.01490 [hep-th].
  179. D. Jang, Y. Kim, O.-K. Kwon, and D. D. Tolla, “Mass-deformed ABJM Theory and LLM Geometries: Exact Holography,” JHEP 04 (2017) 104, arXiv:1612.05066 [hep-th].
  180. D. Jang, Y. Kim, O.-K. Kwon, and D. D. Tolla, “Holography of Massive M2-brane Theory with Discrete Torsion,” Eur. Phys. J. C 80 no. 3, (2020) 224, arXiv:1906.06881 [hep-th].
  181. D. Z. Freedman and S. S. Pufu, “The holography of F𝐹Fitalic_F-maximization,” JHEP 03 (2014) 135, arXiv:1302.7310 [hep-th].
  182. N. Kim, “Solving Mass-deformed Holography Perturbatively,” JHEP 04 (2019) 053, arXiv:1902.00418 [hep-th].
  183. N. Bobev, V. S. Min, K. Pilch, and F. Rosso, “Mass Deformations of the ABJM Theory: The Holographic Free Energy,” JHEP 03 (2019) 130, arXiv:1812.01026 [hep-th].
  184. N. Kim and S.-J. Kim, “A perturbative study of holographic mABJM theory,” Phys. Lett. B 797 (2019) 134837, arXiv:1904.09465 [hep-th].
  185. L. Anderson and M. M. Roberts, “Mass deformed ABJM and 𝒫⁢𝒯𝒫𝒯\mathcal{P}\mathcal{T}caligraphic_P caligraphic_T symmetry,” JHEP 04 (2019) 036, arXiv:1807.10307 [hep-th].
  186. J. G. Russo and G. A. Silva, “Exact partition function in U⁢(2)×U⁢(2)𝑈2𝑈2U(2)\times U(2)italic_U ( 2 ) × italic_U ( 2 ) ABJM theory deformed by mass and Fayet-Iliopoulos terms,” JHEP 12 (2015) 092, arXiv:1510.02957 [hep-th].
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