Open Access
Issue
EPJ Web Conf.
Volume 258, 2022
A Virtual Tribute to Quark Confinement and the Hadron Spectrum (vConf21)
Article Number 01007
Number of page(s) 12
Section Plenary Presentations
DOI https://doi.org/10.1051/epjconf/202225801007
Published online 11 January 2022
  1. K. Fukushima, C. Sasaki, Prog. Part. Nucl. Phys. 72, 99 (2013), 1301.6377 [Google Scholar]
  2. H.T. Ding, PoS LATTICE2016, 022 (2017), 1702.00151 [Google Scholar]
  3. C.S. Fischer, Prog. Part. Nucl. Phys. 105, 1 (2019), 1810.12938 [Google Scholar]
  4. J. Ghiglieri, A. Kurkela, M. Strickland, A. Vuorinen, Phys. Rept. 880, 1 (2020), 2002.10188 [Google Scholar]
  5. J.N. Guenther, Eur. Phys. J. A 57, 136 (2021), 2010.15503 [Google Scholar]
  6. A. Bazavov et al. (HotQCD), Phys. Lett. B 795, 15 (2019), 1812.08235 [Google Scholar]
  7. S. Borsanyi, Z. Fodor, J.N. Guenther, R. Kara, S.D. Katz, P. Parotto, A. Pasztor, C. Ratti, K.K. Szabo, Phys. Rev. Lett. 125, 052001 (2020), 2002.02821 [Google Scholar]
  8. A.Y. Kotov, M.P. Lombardo, A. Trunin, Phys. Lett. B 823, 136749 (2021), 2105.09842 [Google Scholar]
  9. F. Gao, J.M. Pawlowski, Phys. Lett. B 820, 136584 (2021), 2010.13705 [Google Scholar]
  10. J. Braun, W.J. Fu, J.M. Pawlowski, F. Rennecke, D. Rosenblüh, S. Yin, Phys. Rev. D 102, 056010 (2020), 2003.13112 [Google Scholar]
  11. G. Aarts et al. (2020), 2007.04188 [Google Scholar]
  12. H.T. Ding et al. (HotQCD), Phys. Rev. Lett. 123, 062002 (2019), 1903.04801 [Google Scholar]
  13. A. Bazavov et al. (HotQCD), Phys. Rev. D 86, 094503 (2012), 1205.3535 [Google Scholar]
  14. M.I. Buchoff et al., Phys. Rev. D 89, 054514 (2014), 1309.4149 [Google Scholar]
  15. V. Dick, F. Karsch, E. Laermann, S. Mukherjee, S. Sharma, Phys. Rev. D 91, 094504 (2015), 1502.06190 [Google Scholar]
  16. H.T. Ding, S.T. Li, S. Mukherjee, A. Tomiya, X.D. Wang, Y. Zhang, Phys. Rev. Lett. 126, 082001 (2021), 2010.14836 [Google Scholar]
  17. O. Kaczmarek, L. Mazur, S. Sharma (2021), 2102.06136 [Google Scholar]
  18. G. Cossu, S. Aoki, H. Fukaya, S. Hashimoto, T. Kaneko, H. Matsufuru, J.I. Noaki, Phys. Rev. D 87, 114514 (2013), [Erratum: Phys.Rev.D 88, 019901 (2013)], 1304.6145 [Google Scholar]
  19. B.B. Brandt, A. Francis, H.B. Meyer, O. Philipsen, D. Robaina, H. Wittig, JHEP 12, 158 (2016), 1608.06882 [Google Scholar]
  20. A. Tomiya, G. Cossu, S. Aoki, H. Fukaya, S. Hashimoto, T. Kaneko, J. Noaki, Phys. Rev. D 96, 034509 (2017), [Addendum: Phys.Rev.D 96, 079902 (2017)], 1612.01908 [Google Scholar]
  21. S. Aoki, Y. Aoki, G. Cossu, H. Fukaya, S. Hashimoto, T. Kaneko, C. Rohrhofer, K. Suzuki (JLQCD), Phys. Rev. D 103, 074506 (2021), 2011.01499 [Google Scholar]
  22. J. Braun, M. Leonhardt, J.M. Pawlowski, D. Rosenblüh (QCD) (2020), 2012.06231 [Google Scholar]
  23. A. Bazavov, H.T. Ding, P. Hegde, F. Karsch, E. Laermann, S. Mukherjee, P. Petreczky, C. Schmidt, Phys. Rev. D 95, 074505 (2017), 1701.03548 [Google Scholar]
  24. Y. Kuramashi, Y. Nakamura, H. Ohno, S. Takeda, Phys. Rev. D 101, 054509 (2020), 2001.04398 [Google Scholar]
  25. H. Ohno, Y. Kuramashi, Y. Nakamura, S. Takeda, Critical endpoints in (2+1)- and 4-flavor QCD with Wilson-Clover fermions (2021), presentation at Lattice 2021 [Google Scholar]
  26. S. Sharma, L. Dini, A. Lahiri, Chiral phase transition temperature in 3-flavor QCD (2021), presentation at Lattice 2021 [Google Scholar]
  27. F. Cuteri, O. Philipsen, A. Sciarra (2021), 2107.12739 [Google Scholar]
  28. C. Rohrhofer, Y. Aoki, G. Cossu, H. Fukaya, L.Y. Glozman, S. Hashimoto, C.B. Lang, S. Prelovsek, Phys. Rev. D 96, 094501 (2017), [Erratum: Phys.Rev.D 99, 039901 (2019)], 1707.01881 [Google Scholar]
  29. C. Rohrhofer, Y. Aoki, G. Cossu, H. Fukaya, C. Gattringer, L.Y. Glozman, S. Hashimoto, C.B. Lang, S. Prelovsek, Phys. Rev. D 100, 014502 (2019), 1902.03191 [Google Scholar]
  30. C. Rohrhofer, Y. Aoki, L.Y. Glozman, S. Hashimoto, Phys. Lett. B 802, 135245 (2020), 1909.00927 [Google Scholar]
  31. M. Cardinali, M. D’Elia, A. Pasqui (2021), 2107.02745 [Google Scholar]
  32. A. Alexandra, I. Horváth, Phys. Rev. D 100, 094507 (2019), 1906.08047 [Google Scholar]
  33. A. Alexandra, I. Horváth, Phys. Rev. Lett. 127, 052303 (2021), 2103.05607 [Google Scholar]
  34. C. Bonati, M. D’Elia, F. Negro, F. Sanfilippo, K. Zambello, Phys. Rev. D 98, 054510 (2018), 1805.02960 [Google Scholar]
  35. S. Borsanyi, Z. Fodor, M. Giordano, S.D. Katz, D. Nogradi, A. Pasztor, C.H. Wong (2021), 2108.09213 [Google Scholar]
  36. W.J. Fu, J.M. Pawlowski, F. Rennecke, Phys. Rev. D 101, 054032 (2020), 1909.02991 [Google Scholar]
  37. F. Gao, J.M. Pawlowski, Phys. Rev. D 102, 034027 (2020), 2002.07500 [Google Scholar]
  38. C. Bonati, M. D’Elia, M. Mariti, M. Mesiti, F. Negro, F. Sanfilippo, Phys. Rev. D 92, 054503 (2015), 1507.03571 [Google Scholar]
  39. R. Bellwied, S. Borsanyi, Z. Fodor, J. Günther, S.D. Katz, C. Ratti, K.K. Szabo, Phys. Lett. B 751, 559 (2015), 1507.07510 [Google Scholar]
  40. F. Gao, Y.X. Liu, Phys. Rev. D 94, 076009 (2016), 1607.01675 [Google Scholar]
  41. S. Borsanyi, Z. Fodor, J.N. Guenther, S.K. Katz, K.K. Szabo, A. Pasztor, I. Portillo, C. Ratti, JHEP 10, 205 (2018), 1805.04445 [Google Scholar]
  42. A. Bazavov et al., Phys. Rev. D 101, 074502 (2020), 2001.08530 [Google Scholar]
  43. W.J. Fu, J.M. Pawlowski, F. Rennecke, B.J. Schaefer, Phys. Rev. D 94, 116020 (2016), 1608.04302 [Google Scholar]
  44. W.J. Fu, X. Luo, J.M. Pawlowski, F. Rennecke, R. Wen, S. Yin (2021), 2101.06035 [Google Scholar]
  45. A. Alexandra, G. Basar, P.F. Bedaque, N.C. Warrington (2020), 2007.05436 [Google Scholar]
  46. K. Langfeld, PoS LATTICE2016, 010 (2017), 1610.09856 [Google Scholar]
  47. C. Gattringer, M. Mandl, P. Törek, Phys. Rev. D 100, 114517 (2019), 1911.05320 [Google Scholar]
  48. O. Philipsen, Strong coupling methods in QCD thermodynamics (2021), 2104.03696 [Google Scholar]
  49. F. Attanasio, B. Jäger, F.P.G. Ziegler, Eur. Phys. J. A 56, 251 (2020), 2006.00476 [Google Scholar]
  50. Y. Ito, H. Matsufuru, Y. Namekawa, J. Nishimura, S. Shimasaki, A. Tsuchiya, S. Tsutsui, JHEP 10, 144 (2020), 2007.08778 [Google Scholar]
  51. F. Attanasio, B. Jäger, F.P.G. Ziegler, With complex Langevin towards the QCD phase diagram, in 38th International Symposium on Lattice Field Theory (2021), 2111.02241 [Google Scholar]
  52. M. Klegrewe, W. Unger, Phys. Rev. D 102, 034505 (2020), 2005.10813 [Google Scholar]
  53. J. Glesaaen, M. Neuman, O. Philipsen, JHEP 03, 100 (2016), 1512.05195 [Google Scholar]
  54. G. Gagliardi, J. Kim, W. Unger, EPJ Web Conf. 175, 07047 (2018), 1710.07564 [Google Scholar]
  55. G. Gagliardi, W. Unger, Phys. Rev. D 101, 034509 (2020), 1911.08389 [Google Scholar]
  56. O. Philipsen, J. Scheunert, JHEP 11, 022 (2019), 1908.03136 [Google Scholar]
  57. B.B. Brandt, G. Endrodi, S. Schmalzbauer, Phys. Rev. D97, 054514 (2018), 1712.08190 [Google Scholar]
  58. B.B. Brandt, F. Cuteri, G. Endrodi, S. Schmalzbauer, Particles 3, 80 (2020), 1912.07451 [Google Scholar]
  59. T. Boz, P. Giudice, S. Hands, J.I. Skullerud, Phys. Rev. D 101, 074506 (2020), 1912.10975 [Google Scholar]
  60. N. Astrakhantsev, V.V. Braguta, E.M. Ilgenfritz, A.Y. Kotov, A.A. Nikolaev, Phys. Rev. D 102, 074507 (2020), 2007.07640 [Google Scholar]
  61. P.V. Buividovich, D. Smith, L. von Smekal, Phys. Rev. D 102, 094510 (2020), 2007.05639 [Google Scholar]
  62. K. Iida, E. Itou, T.G. Lee (2019), 1910.07872 [Google Scholar]
  63. J. Wilhelm, L. Holicki, D. Smith, B. Wellegehausen, L. von Smekal (2019), 1910.04495 [Google Scholar]
  64. J.O. Andersen, T. Brauner, W. Naylor, Phys. Rev. D92, 114504 (2015), 1505.05925 [Google Scholar]
  65. J. Chao, Chin. Phys. C 44, 034108 (2020), 1808.01928 [Google Scholar]
  66. P. Adhikari, J.O. Andersen, Phys. Lett. B 804, 135352 (2020), 1909.01131 [Google Scholar]
  67. T.G. Khunjua, K.G. Klimenko, R.N. Zhokhov, JHEP 06, 148 (2020), 2003.10562 [Google Scholar]
  68. T. Furusawa, Y. Tanizaki, E. Itou, Phys. Rev. Res. 2, 033253 (2020), 2005.13822 [Google Scholar]
  69. R. Contant, M.Q. Huber (2019), 1909.12796 [Google Scholar]
  70. T. Gorda, A. Kurkela, R. Paatelainen, S. Säppi, A. Vuorinen, Phys. Rev. Lett. 127, 162003 (2021), 2103.05658 [Google Scholar]
  71. E. Annala, T. Gorda, A. Kurkela, J. Nättilä, A. Vuorinen, Nature Phys. 16, 907 (2020), 1903.09121 [Google Scholar]
  72. E. Annala, T. Gorda, E. Katerini, A. Kurkela, J. Nättilä, V. Paschalidis, A. Vuorinen (2021), 2105.05132 [Google Scholar]
  73. S.K. Greif, K. Hebeler, J.M. Lattimer, C.J. Pethick, A. Schwenk, Astrophys. J. 901, 155 (2020), 2005.14164 [Google Scholar]
  74. G. Raaijmakers, S.K. Greif, K. Hebeler, T. Hinderer, S. Nissanke, A. Schwenk, T.E. Riley, A.L. Watts, J.M. Lattimer, W.C.G. Ho, Astrophys. J. Lett. 918, L29 (2021), 2105.06981 [Google Scholar]
  75. G. Aarts, C. Allton, D. De Boni, B. Jäger, Phys. Rev. D99, 074503 (2019), 1812.07393 [Google Scholar]
  76. G. Aarts, C. Allton, S. Hands, B. Jäger, C. Praki, J.I. Skullerud (2015), 1502.03603 [Google Scholar]
  77. G. Aarts, C. Allton, D. De Boni, S. Hands, B. Jäger, C. Praki, J.I. Skullerud, JHEP 06, 034 (2017), 1703.09246 [Google Scholar]
  78. A. Rothkopf, Phys. Rept. 858, 1 (2020), 1912.02253 [Google Scholar]
  79. R. Larsen, S. Meinel, S. Mukherjee, P. Petreczky, Phys. Lett. B 800, 135119 (2020), 1910.07374 [Google Scholar]
  80. R. Larsen, S. Meinel, S. Mukherjee, P. Petreczky, Phys. Rev. D 100, 074506 (2019), 1908.08437 [Google Scholar]
  81. R. Larsen, S. Meinel, S. Mukherjee, P. Petreczky, Phys. Rev. D 102, 114508 (2020), 2008.00100 [Google Scholar]
  82. S. Kim, P. Petreczky, A. Rothkopf, JHEP 11, 088 (2018), 1808.08781 [Google Scholar]
  83. A. Kelly, A. Rothkopf, J.I. Skullerud, Phys. Rev. D97, 114509 (2018), 1802.00667 [Google Scholar]
  84. Y. Burnier, A. Rothkopf, Phys. Rev. Lett. 111, 182003 (2013), 1307.6106 [Google Scholar]
  85. T. Spriggs, S. Omer, B. Page et al. A comparison of spectral reconstruction methods applied to non-zero temperature NRQCD meson correlation functions (2021), these proceedings. [Google Scholar]
  86. H.T. Ding, O. Kaczmarek, A.L. Lorenz, H. Ohno, H. Sandmeyer, H.T. Shu (2021), 2108.13693 [Google Scholar]
  87. N.Y. Astrakhantsev, V.V. Braguta, A.Y. Kotov, Phys. Rev. D 98, 054515 (2018), 1804.02382 [Google Scholar]
  88. E. Itou, Y. Nagai, QCD viscosity by combining the gradient flow and sparse model-ing methods (2021), presentation at Lattice 2021. [Google Scholar]
  89. M. Panero, K. Rummukainen, A. Schäfer, Phys. Rev. Lett. 112, 162001 (2014), 1307.5850 [Google Scholar]
  90. A. Kumar, A. Majumder, J.H. Weber (2020), 2010.14463 [Google Scholar]
  91. S. Caron-Huot, M. Laine, G.D. Moore, JHEP 04, 053 (2009), 0901.1195 [Google Scholar]
  92. N. Brambilla, V. Leino, P. Petreczky, A. Vairo, Phys. Rev. D 102, 074503 (2020), 2007.10078 [Google Scholar]
  93. L. Altenkort, A.M. Eller, O. Kaczmarek, L. Mazur, G.D. Moore, H.T. Shu, Phys. Rev. D 103, 014511 (2021), 2009.13553 [Google Scholar]
  94. L. Altenkort, A.M. Eller, O. Kaczmarek, L. Mazur, G.D. Moore, H.T. Shu, Spectral reconstruction details of a gradient-flowed color-electric correlator, in 19th International Conference on Strangeness in Quark Matter (2021), 2109.11303 [Google Scholar]
  95. D. Banerjee, S. Datta, R. Gavai, P. Majumdar, Phys. Rev. D 85, 014510 (2012), 1109.5738 [Google Scholar]
  96. A. Francis, O. Kaczmarek, M. Laine, T. Neuhaus, H. Ohno, Phys. Rev. D 92, 116003 (2015), 1508.04543 [Google Scholar]
  97. A. Trunin et al., Electromagnetic conductivity ofquark-gluon plasma at non-zero baryon density (2021), presentation at Lattice 2021 [Google Scholar]
  98. G. Aarts, A. Nikolaev, Eur. Phys. J. A 57, 118 (2021), 2008.12326 [Google Scholar]
  99. A. Amato, G. Aarts, C. Allton, P. Giudice, S. Hands, J.I. Skullerud, Phys.Rev.Lett. 111, 172001 (2013), 1307.6763 [Google Scholar]
  100. G. Aarts, C. Allton, A. Amato, P. Giudice, S. Hands, J.I. Skullerud, JHEP 1502, 186 (2015), 1412.6411 [Google Scholar]
  101. B.B. Brandt, A. Francis, B. Jäger, H.B. Meyer, Phys. Rev. D 93, 054510 (2016), 1512.07249 [Google Scholar]
  102. N. Astrakhantsev, V.V. Braguta, M. D’Elia, A.Y. Kotov, A.A. Nikolaev, F. Sanfilippo, Phys. Rev.D 102, 054516 (2020), 1910.08516 [Google Scholar]
  103. N. Astrakhantsev, V.V. Braguta, M. Cardinali, M. D’Elia, L. Maio, F. Sanfilippo, A. Trunin, A. Vasiliev, Electromagnetic conductivity ofquark-gluon plasma at non-zero baryon density, in 38th International Symposium on Lattice Field Theory (2021), 2110.10727 [Google Scholar]

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