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  • Open Access

Gauge-independent gravitational waves from cogenesis in a B−L conserving universe

Wan-Zhe Feng1,*, Jinzheng Li2,†, Pran Nath2,‡, and Zong-Huan Ye1,§

  • 1Center for Joint Quantum Studies and Department of Physics, School of Science, Tianjin University, Tianjin 300350, People’s Republic of China
  • 2Department of Physics, Northeastern University, Boston, Massachusetts 02115-5000, USA

  • *Contact author: vicf@tju.edu.cn
  • †Contact author: li.jinzh@northeastern.edu
  • ‡Contact author: p.nath@northeastern.edu
  • §Contact author: y2953083702@tju.edu.cn

Phys. Rev. D 113, 063504 – Published 2 March, 2026

DOI: https://doi.org/10.1103/kvq2-glq5

Abstract

An analysis of baryogenesis and stochastic gravitational wave production is presented for an extension of the Standard Model where the dark sector consists of dark matter particles charged under a U(1)x gauge symmetry, while a subset of dark fields also carry lepton number but no U(1)x charge. We demonstrate that, with CP violation induced by Yukawa couplings, equal and opposite lepton asymmetries are generated in the visible and hidden sectors. Subsequent evolution preserves the lepton number separately in each sector, and sphaleron interactions partially convert the lepton asymmetry into baryon asymmetry near the temperature of the first-order phase transition. Furthermore, we discuss stochastic gravitational wave background production for the first-order phase transition using a gauge-independent bubble nucleation dynamics which yields spectra also valid in the supercooled low-temperature regime with Tp/mAx≪1, where Tp is the percolation temperature and mAx is the dark photon mass. A parameter-space scan identifies regions that simultaneously account for cogenesis of baryon asymmetry and dark matter and predict stochastic gravitational wave signals within reach of current (NANOGrav, EPTA, and PPTA) and future detectors at higher frequencies, providing a unified framework for cogenesis and associated gravitational wave production.

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References (155)

  1. B. P. Abbott et al. (LIGO Scientific and Virgo Collaborations), Phys. Rev. Lett. 116, 061102 (2016).
  2. G. Agazie et al. (NANOGrav Collaboration), Astrophys. J. Lett. 951, L8 (2023).
  3. J. Antoniadis et al. (EPTA and InPTA Collaborations), Astron. Astrophys. 678, A50 (2023).
  4. D. J. Reardon, A. Zic, R. M. Shannon, G. B. Hobbs, M. Bailes, V. Di Marco, A. Kapur, A. F. Rogers, E. Thrane, J. Askew et al., Astrophys. J. Lett. 951, L6 (2023).
  5. N. Agarwal, G. Agazie, A. Anumarlapudi, A. M. Archibald, Z. Arzoumanian, J. G. Baier, P. T. Baker, B. Becsy, L. Blecha, A. Brazier et al., Astrophys. J. Lett. 998, L11 (2026).
  6. Q. Zheng, C. M. F. Mingarelli, W. DeRocco, J. Nay, K. K. Boddy, and J. A. Dror, Phys. Rev. D 113, 023037 (2026).
  7. S. Y. Khlebnikov and I. I. Tkachev, Phys. Rev. D 56, 653 (1997).
  8. R. Easther, J. T. Giblin, Jr., and E. A. Lim, Phys. Rev. Lett. 99, 221301 (2007).
  9. J. Garcia-Bellido, D. G. Figueroa, and A. Sastre, Phys. Rev. D 77, 043517 (2008).
  10. D. A. Kirzhnits, JETP Lett. 15, 529 (1972).
  11. D. A. Kirzhnits and A. D. Linde, Phys. Lett. 42B, 471 (1972).
  12. E. Witten, Nucl. Phys. B177, 477 (1981).
  13. A. H. Guth and E. J. Weinberg, Phys. Rev. D 23, 876 (1981).
  14. P. J. Steinhardt, Phys. Rev. D 25, 2074 (1982).
  15. F. C. Adams, Phys. Rev. D 48, 2800 (1993).
  16. R. R. Parwani, Phys. Rev. D 45, 4695 (1992); 48, 5965(E) (1993).
  17. P. B. Arnold and O. Espinosa, Phys. Rev. D 47, 3546 (1993); 50, 6662(E) (1994).
  18. J. R. Espinosa, M. Quiros, and F. Zwirner, Phys. Lett. B 314, 206 (1993).
  19. M. Quiros, arXiv:hep-ph/9304284.
  20. D. Curtin, P. Meade, and H. Ramani, Eur. Phys. J. C 78, 787 (2018).
  21. J. R. Espinosa and M. Quiros, Phys. Rev. D 76, 076004 (2007).
  22. J. R. Espinosa, T. Konstandin, J. M. No, and M. Quiros, Phys. Rev. D 78, 123528 (2008).
  23. D. Azevedo, P. M. Ferreira, M. M. Muhlleitner, S. Patel, R. Santos, and J. Wittbrodt, J. High Energy Phys. 11 (2018) 091.
  24. A. Mohamadnejad, J. High Energy Phys. 03 (2022) 188.
  25. L. Biermann, M. Mühlleitner, and J. Müller, Eur. Phys. J. C 83, 439 (2023).
  26. W. Wang, W. L. Xu, and J. M. Yang, Eur. Phys. J. Plus 138, 781 (2023).
  27. A. Addazi, Mod. Phys. Lett. A 32, 1750049 (2017).
  28. Y. Zhu, J. Liu, R. Qin, and L. Bian, Phys. Rev. D 112, 015018 (2025).
  29. M. Aoki, H. Goto, and J. Kubo, Phys. Rev. D 96, 075045 (2017).
  30. R. Pasechnik, M. Reichert, F. Sannino, and Z. W. Wang, J. High Energy Phys. 02 (2024) 159.
  31. P. Schwaller, Phys. Rev. Lett. 115, 181101 (2015).
  32. A. Addazi and A. Marciano, Chin. Phys. C 42, 023107 (2018).
  33. M. Fairbairn, E. Hardy, and A. Wickens, J. High Energy Phys. 07 (2019) 044.
  34. R. T. Co, K. Harigaya, and A. Pierce, J. High Energy Phys. 12 (2021) 099.
  35. D. Borah, A. Dasgupta, and S. K. Kang, Phys. Rev. D 104, 063501 (2021).
  36. T. Abe and K. Hashino, Prog. Theor. Exp. Phys. 2024, 063B02 (2024).
  37. B. Imtiaz, Y. F. Cai, and Y. Wan, Eur. Phys. J. C 79, 25 (2019).
  38. A. Paul, U. Mukhopadhyay, and D. Majumdar, J. High Energy Phys. 05 (2021) 223.
  39. M. Breitbach, J. Kopp, E. Madge, T. Opferkuch, and P. Schwaller, J. Cosmol. Astropart. Phys. 07 (2019) 007.
  40. F. Ertas, F. Kahlhoefer, and C. Tasillo, J. Cosmol. Astropart. Phys. 02 (2022) 014.
  41. K. Freese and M. W. Winkler, Phys. Rev. D 106, 103523 (2022).
  42. T. Bringmann, T. E. Gonzalo, F. Kahlhoefer, J. Matuszak, and C. Tasillo, J. Cosmol. Astropart. Phys. 05 (2024) 065.
  43. A. Banik, Y. Cui, Y. D. Tsai, and Y. Tsai, arXiv:2412.16282.
  44. J. Jaeckel, V. V. Khoze, and M. Spannowsky, Phys. Rev. D 94, 103519 (2016).
  45. S. P. Li and K. P. Xie, Phys. Rev. D 108, 055018 (2023).
  46. T. Ghosh, A. Ghoshal, H. K. Guo, F. Hajkarim, S. F. King, K. Sinha, X. Wang, and G. White, J. Cosmol. Astropart. Phys. 05 (2024) 100.
  47. P. Di Bari, D. Marfatia, and Y. L. Zhou, J. High Energy Phys. 10 (2021) 193.
  48. Z. Chen, K. Ye, and M. Zhang, Phys. Rev. D 107, 095027 (2023).
  49. Y. Gouttenoire and T. Volansky, Phys. Rev. D 110, 043514 (2024).
  50. S. Kanemura and S. P. Li, J. Cosmol. Astropart. Phys. 03 (2024) 005.
  51. M. Kierkla, N. Ramberg, P. Schicho, and D. Schmitt, arXiv:2506.15496.
  52. P. Ghosh, T. Ghosh, and S. Roy, J. High Energy Phys. 10 (2023) 057.
  53. S. Roy, Phys. Rev. D 111, 015037 (2025).
  54. S. Balan, T. Bringmann, F. Kahlhoefer, J. Matuszak, and C. Tasillo, J. Cosmol. Astropart. Phys. 08 (2025) 062.
  55. A. Gonstal, M. Lewicki, and B. Swiezewska, J. High Energy Phys. 08 (2025) 039.
  56. M. Carena, A. Ireland, T. Ou, and I. R. Wang, J. High Energy Phys. 09 (2025) 175.
  57. A. Dasgupta, M. Knauss, and M. Sher, Phys. Rev. D 112, 055034 (2025).
  58. T. Biekötter and M. O. Olea-Romacho, J. High Energy Phys. 12 (2025) 040.
  59. M. Chala, L. Gil, and Z. Ren, Chin. Phys. 49, 123105 (2025).
  60. S. Roy, arXiv:2509.19982.
  61. A. G. Cohen, D. B. Kaplan, and A. E. Nelson, Phys. Lett. B 245, 561 (1990).
  62. M. Carena, J. M. Moreno, M. Quiros, M. Seco, and C. E. M. Wagner, Nucl. Phys. B599, 158 (2001).
  63. J. M. Cline, arXiv:hep-ph/0609145.
  64. G. A. White, A Pedagogical Introduction to Electroweak Baryogenesis (Morgan & Claypool, 2016), ISBN [Amazon][WorldCat], [Amazon][WorldCat], 10.1088/978-1-6817-4457-5.
  65. J. M. Cline, Proc. Sci., TASI2018 (2019) 001 [arXiv:1807.08749].
  66. K. Kajantie, M. Laine, K. Rummukainen, and M. E. Shaposhnikov, Phys. Rev. Lett. 77, 2887 (1996).
  67. M. Gurtler, E. M. Ilgenfritz, and A. Schiller, Phys. Rev. D 56, 3888 (1997).
  68. F. Csikor, Z. Fodor, and J. Heitger, Phys. Rev. Lett. 82, 21 (1999).
  69. C. T. Hill, S. Pokorski, and J. Wang, Phys. Rev. D 64, 105005 (2001).
  70. S. Girmohanta, Y. Nakai, and Z. Zhang, Phys. Rev. D 112, 075028 (2025).
  71. B. Patt and F. Wilczek, arXiv:hep-ph/0605188.
  72. B. Holdom, Phys. Lett. 166B, 196 (1986).
  73. B. Kors and P. Nath, Phys. Lett. B 586, 366 (2004).
  74. D. Feldman, Z. Liu, and P. Nath, Phys. Rev. D 75, 115001 (2007).
  75. K. Cheung and T. C. Yuan, J. High Energy Phys. 03 (2007) 120.
  76. W. Z. Feng, Z. H. Zhang, and K. Y. Zhang, J. Cosmol. Astropart. Phys. 05 (2024) 112.
  77. A. Aboubrahim, P. Nath, and Z. Y. Wang, J. High Energy Phys. 12 (2021) 148.
  78. M. Du, Z. Liu, and P. Nath, Phys. Lett. B 834, 137454 (2022).
  79. D. Feldman, B. Kors, and P. Nath, Phys. Rev. D 75, 023503 (2007).
  80. W. Z. Feng and P. Nath, Phys. Lett. B 731, 43 (2014).
  81. D. E. Kaplan, M. A. Luty, and K. M. Zurek, Phys. Rev. D 79, 115016 (2009).
  82. T. Cohen, D. J. Phalen, A. Pierce, and K. M. Zurek, Phys. Rev. D 82, 056001 (2010).
  83. M. L. Graesser, I. M. Shoemaker, and L. Vecchi, J. High Energy Phys. 10 (2011) 110.
  84. M. Ibe, S. Matsumoto, and T. T. Yanagida, Phys. Lett. B 708, 112 (2012).
  85. W. Z. Feng, P. Nath, and G. Peim, Phys. Rev. D 85, 115016 (2012).
  86. W. Z. Feng, A. Mazumdar, and P. Nath, Phys. Rev. D 88, 036014 (2013).
  87. W. Z. Feng and P. Nath, Mod. Phys. Lett. A 32, 1740005 (2017).
  88. D. Metaxas and E. J. Weinberg, Phys. Rev. D 53, 836 (1996).
  89. M. Garny and T. Konstandin, J. High Energy Phys. 07 (2012) 189.
  90. S. Arunasalam and M. J. Ramsey-Musolf, J. High Energy Phys. 08 (2022) 138.
  91. J. Löfgren, M. J. Ramsey-Musolf, P. Schicho, and T. V. I. Tenkanen, Phys. Rev. Lett. 130, 251801 (2023).
  92. J. Hirvonen, J. Löfgren, M. J. Ramsey-Musolf, P. Schicho, and T. V. I. Tenkanen, J. High Energy Phys. 07 (2022) 135.
  93. M. Kierkla, B. Swiezewska, T. V. I. Tenkanen, and J. van de Vis, J. High Energy Phys. 02 (2024) 234.
  94. P. A. R. Ade et al. (Planck Collaboration), Astron. Astrophys. 571, A1 (2014).
  95. L. Covi, E. Roulet, and F. Vissani, Phys. Lett. B 384, 169 (1996).
  96. J. A. Harvey and M. S. Turner, Phys. Rev. D 42, 3344 (1990).
  97. E. Komatsu et al. (WMAP Collaboration), Astrophys. J. Suppl. Ser. 192, 18 (2011).
  98. M. Fabbrichesi, E. Gabrielli, and G. Lanfranchi, arXiv:2005.01515.
  99. A. Aboubrahim, M. M. Altakach, M. Klasen, P. Nath, and Z. Y. Wang, J. High Energy Phys. 03 (2023) 182.
  100. J. Li and P. Nath, Phys. Rev. D 111, 123007 (2025).
  101. P. Amaro-Seoane et al. (LISA Collaboration), arXiv:1702.00786.
  102. J. Baker, J. Bellovary, P. L. Bender, E. Berti, R. Caldwell, J. Camp, J. W. Conklin, N. Cornish, C. Cutler, R. DeRosa et al., arXiv:1907.06482.
  103. P. Amaro-Seoane, S. Aoudia, S. Babak, P. Binetruy, E. Berti, A. Bohe, C. Caprini, M. Colpi, N. J. Cornish, K. Danzmann et al., GW Notes 6, 4 (2013).
  104. C. Grojean and G. Servant, Phys. Rev. D 75, 043507 (2007).
  105. S. Kawamura, T. Nakamura, M. Ando, N. Seto, K. Tsubono, K. Numata, R. Takahashi, S. Nagano, T. Ishikawa, M. Musha et al., Classical Quantum Gravity 23, S125 (2006).
  106. W. H. Ruan, Z. K. Guo, R. G. Cai, and Y. Z. Zhang, Int. J. Mod. Phys. A 35, 2050075 (2020).
  107. J. Luo et al. (TianQin Collaboration), Classical Quantum Gravity 33, 035010 (2016).
  108. A. Sesana, N. Korsakova, M. A. Sedda, V. Baibhav, E. Barausse, S. Barke, E. Berti, M. Bonetti, P. R. Capelo, C. Caprini et al., Exp. Astron. 51, 1333 (2021).
  109. D. Croon, O. Gould, P. Schicho, T. V. I. Tenkanen, and G. White, J. High Energy Phys. 04 (2021) 055.
  110. W. Z. Feng and Z. H. Zhang, Phys. Rev. D 112, 035004 (2025).
  111. J. H. Chang, R. Essig, and S. D. McDermott, J. High Energy Phys. 01 (2017) 107.
  112. J. D. Bjorken, S. Ecklund, W. R. Nelson, A. Abashian, C. Church, B. Lu, L. W. Mo, T. A. Nunamaker, and P. Rassmann, Phys. Rev. D 38, 3375 (1988).
  113. B. Batell, R. Essig, and Z. Surujon, Phys. Rev. Lett. 113, 171802 (2014).
  114. L. Marsicano, M. Battaglieri, M. Bondi’, C. D. R. Carvajal, A. Celentano, M. De Napoli, R. De Vita, E. Nardi, M. Raggi, and P. Valente, Phys. Rev. D 98, 015031 (2018).
  115. S. N. Gninenko, Phys. Lett. B 713, 244 (2012).
  116. J. Blümlein and J. Brunner, Phys. Lett. B 731, 320 (2014).
  117. J. Blumlein and J. Brunner, Phys. Lett. B 701, 155 (2011).
  118. E. M. Riordan, M. W. Krasny, K. Lang, P. De Barbaro, A. Bodek, S. Dasu, N. Varelas, X. Wang, R. G. Arnold, D. Benton et al., Phys. Rev. Lett. 59, 755 (1987).
  119. M. Pospelov, Phys. Rev. D 80, 095002 (2009).
  120. NA64 Collaboration, CERN Report No. CERN-SPSC-2018-024.
  121. H. Merkel, P. Achenbach, C. Ayerbe Gayoso, T. Beranek, J. Bericic, J. C. Bernauer, R. Böhm, D. Bosnar, L. Correa, L. Debenjak et al., Phys. Rev. Lett. 112, 221802 (2014).
  122. J. P. Lees et al. (BABAR Collaboration, Phys. Rev. Lett. 113, 201801 (2014).
  123. R. Piandani, EPJ Web Conf. 126, 04035 (2016).
  124. F. Archilli et al. (KLOE-2 Collaboration), Phys. Lett. B 706, 251 (2012).
  125. D. Babusci et al. (KLOE-2 Collaboration), Phys. Lett. B 720, 111 (2013).
  126. D. Babusci et al. (KLOE-2 Collaboration), Phys. Lett. B 736, 459 (2014).
  127. A. Anastasi et al. (KLOE-2 Collaboration), Phys. Lett. B 757, 356 (2016).
  128. R. Aaij et al. (LHCb Collaboration), Phys. Rev. Lett. 124, 041801 (2020).
  129. CMS Collaboration, CERN Report No. CMS-PAS-EXO-19-018.
  130. B. Hua and J. Zhu, Comput. Phys. Commun. 316, 109764 (2025).
  131. M. Sher, Phys. Rep. 179, 273 (1989).
  132. H. H. Patel and M. J. Ramsey-Musolf, J. High Energy Phys. 07 (2011) 029.
  133. H. Bahl, M. Carena, A. Ireland, and C. E. M. Wagner, J. High Energy Phys. 09 (2024) 153.
  134. P. Bittar, S. Roy, and C. E. M. Wagner, J. High Energy Phys. 12 (2025) 021.
  135. P. Athron, C. Balázs, and L. Morris, J. Cosmol. Astropart. Phys. 03 (2023) 006.
  136. P. Athron, A. Fowlie, C. T. Lu, L. Morris, L. Wu, Y. Wu, and Z. Xu, Phys. Rev. Lett. 132, 221001 (2024).
  137. C. Caprini, M. Chala, G. C. Dorsch, M. Hindmarsh, S. J. Huber, T. Konstandin, J. Kozaczuk, G. Nardini, J. M. No, K. Rummukainen et al., J. Cosmol. Astropart. Phys. 03 (2020) 024.
  138. X. Wang, F. P. Huang, and X. Zhang, J. Cosmol. Astropart. Phys. 05 (2020) 045.
  139. T. Bringmann, P. F. Depta, T. Konstandin, K. Schmidt-Hoberg, and C. Tasillo, J. Cosmol. Astropart. Phys. 11 (2023) 053.
  140. Y. Bai and M. Korwar, Phys. Rev. D 105, 095015 (2022).
  141. F. Giese, T. Konstandin, K. Schmitz, and J. van de Vis, J. Cosmol. Astropart. Phys. 01 (2021) 072.
  142. F. Giese, T. Konstandin, and J. van de Vis, J. Cosmol. Astropart. Phys. 07 (2020) 057.
  143. D. Bodeker and G. D. Moore, J. Cosmol. Astropart. Phys. 05 (2017) 025.
  144. J. R. Espinosa, T. Konstandin, J. M. No, and G. Servant, J. Cosmol. Astropart. Phys. 06 (2010) 028.
  145. W. Y. Ai, B. Garbrecht, and C. Tamarit, J. Cosmol. Astropart. Phys. 03 (2022) 015.
  146. W. Y. Ai, B. Laurent, and J. van de Vis, J. High Energy Phys. 02 (2025) 119.
  147. J. Ellis, M. Lewicki, J. M. No, and V. Vaskonen, J. Cosmol. Astropart. Phys. 06 (2019) 024.
  148. J. Ellis, M. Lewicki, and V. Vaskonen, J. Cosmol. Astropart. Phys. 11 (2020) 020.
  149. C. Caprini, M. Hindmarsh, S. Huber, T. Konstandin, J. Kozaczuk, G. Nardini, J. M. No, A. Petiteau, P. Schwaller, G. Servant et al., J. Cosmol. Astropart. Phys. 04 (2016) 001.
  150. M. Hindmarsh, Phys. Rev. Lett. 120, 071301 (2018).
  151. M. Hindmarsh and M. Hijazi, J. Cosmol. Astropart. Phys. 12 (2019) 062.
  152. M. Hindmarsh, S. J. Huber, K. Rummukainen, and D. J. Weir, Phys. Rev. D 96, 103520 (2017); 101, 089902(E) (2020).
  153. H. K. Guo, K. Sinha, D. Vagie, and G. White, J. Cosmol. Astropart. Phys. 01 (2021) 001.
  154. S. J. Huber and T. Konstandin, J. Cosmol. Astropart. Phys. 09 (2008) 022.
  155. C. Caprini, R. Durrer, and G. Servant, J. Cosmol. Astropart. Phys. 12 (2009) 024.

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