Papers
Topics
Authors
Recent
Search
2000 character limit reached

A complex singlet extension of the Standard Model with a singlet fermion dark matter

Published 10 Dec 2023 in hep-ph | (2312.05776v2)

Abstract: We examine a complex singlet scalar extension of the Standard Model (CxSM) with an extra singlet fermion. Both the singlet scalar and fermion are dark matter (DM) candidates. It is known that although the scalar potential in the CxSM can realize strong first-order electroweak phase transition, the scalar DM included in the model gives only a tiny amount of the relic density compared to the observed one. Therefore, a fermion DM is introduced to compensate for the lack of relic density. We find that the scattering of the fermion DM and nucleons is sufficiently suppressed when the masses of scalar mediators are degenerate, as well as in the case of the scalar DM. We show the range of a combination of the mass and the Yukawa coupling of the fermion DM, which satisfies both the observed relic density and conditions of strong first-order electroweak phase transition.

Definition Search Book Streamline Icon: https://streamlinehq.com
References (14)
  1. J. Aalbers et al. (LZ),  (2022), arXiv:2207.03764 [hep-ex] .
  2. V. A. Rubakov and M. E. Shaposhnikov, Usp. Fiz. Nauk 166, 493 (1996), [Phys. Usp.39,461(1996)], arXiv:hep-ph/9603208 [hep-ph] .
  3. K. Funakubo, Prog. Theor. Phys. 96, 475 (1996), arXiv:hep-ph/9608358 [hep-ph] .
  4. M. Trodden, Rev. Mod. Phys. 71, 1463 (1999), arXiv:hep-ph/9803479 [hep-ph] .
  5. D. E. Morrissey and M. J. Ramsey-Musolf, New J. Phys. 14, 125003 (2012), arXiv:1206.2942 [hep-ph] .
  6. T. Konstandin, Phys. Usp. 56, 747 (2013), [Usp. Fiz. Nauk183,785(2013)], arXiv:1302.6713 [hep-ph] .
  7. E. Senaha, Symmetry 12, 733 (2020).
  8. N. Aghanim et al. (Planck), Astron. Astrophys. 641, A6 (2020), [Erratum: Astron.Astrophys. 652, C4 (2021)], arXiv:1807.06209 [astro-ph.CO] .
  9. G.-C. Cho and C. Idegawa, Nucl. Phys. B 994, 116320 (2023), arXiv:2304.10096 [hep-ph] .
  10. B. Díaz Sáez and P. E. Contreras,   (2023), arXiv:2307.07760 [hep-ph] .
  11. C. E. Yaguna and O. Zapata, Phys. Rev. D 105, 095026 (2022), arXiv:2112.07020 [hep-ph] .
  12. S. Chatrchyan et al. (CMS), Phys. Lett. B 716, 30 (2012), arXiv:1207.7235 [hep-ex] .
  13. C. A. J. O’Hare, Phys. Rev. Lett. 127, 251802 (2021), arXiv:2109.03116 [hep-ph] .
  14. G. Aad et al. (ATLAS), JHEP 08, 104 (2022), arXiv:2202.07953 [hep-ex] .
Citations (2)

Summary

No one has generated a summary of this paper yet.

Paper to Video (Beta)

No one has generated a video about this paper yet.

Whiteboard

No one has generated a whiteboard explanation for this paper yet.

Open Problems

We haven't generated a list of open problems mentioned in this paper yet.

Continue Learning

We haven't generated follow-up questions for this paper yet.

Collections

Sign up for free to add this paper to one or more collections.

Tweets

Sign up for free to view the 2 tweets with 1 like about this paper.