Published January 2025 | Published
Journal Article Open

Gravitational waves and dark matter in the gauged two-Higgs doublet model

  • 1. ROR icon Shanghai Jiao Tong University
  • 2. ROR icon University of Massachusetts Amherst
  • 3. ROR icon California Institute of Technology
  • 4. ROR icon Academia Sinica
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Abstract

We investigate the possibility of a strong first-order electroweak phase transition (FOEWPT) during the early universe within the framework of the gauged two-Higgs doublet model (G2HDM) and explore its detectability through stochastic gravitational wave signals. The G2HDM introduces a dark replica of the Standard Model electroweak gauge group, inducing an accidental Z2 symmetry which not only leads to a simple scalar potential at tree-level but also offers a compelling vectorial dark matter candidate. Using the high temperature expansion in the effective potential that manifests gauge invariance, we find a possible two-step phase transition pattern in the model with a strong first-order transition occurring in the second step at the EW scale temperature. Collider data from the LHC plays a crucial role in constraining the parameter space conducive to this two-step transition. Furthermore, satisfying the nucleation condition necessitates the masses of scalar bosons in the hidden sector to align with the electroweak scale, potentially probed by future collider detectors. The stochastic gravitational wave energy spectrum associated with the phase transition is computed. The results indicate that forthcoming detectors such as BBO, LISA, DECIGO, TianQin and Taiji could potentially detect the gravitational wave signals generated by the FOEWPT. Additionally, we find that the parameter space probed by gravitational waves can also be searched for in future dark matter direct detection experiments, in particular those designed for dark matter masses in the sub-GeV range using the superfluid Helium target detectors.

Copyright and License

© The Authors. This article is distributed under the terms of the Creative Commons Attribution License (CC-BY 4.0), which permits any use, distribution and reproduction in any medium, provided the original author(s) and source are credited.

Article funded by SCOAP3.

Acknowledgement

We would like to thank Eibun Senaha for useful discussions. This work was supported in part by the National Natural Science Foundation of China, grant Nos. 19Z103010239, 12350410369 (VQT) and 11975150, 12375094 (MJRM) and the NSTC of Taiwan, grant Nos. 111-2112-M-001-035, 113-2112-M-001-001 (TCY) and 112-2811-M-001-089 (VQT). VQT would like to thank the Medium and High Energy Physics Group at the Institute of Physics, Academia Sinica, Taiwan for their hospitality during the course of this work.

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Created:
March 20, 2025
Modified:
March 20, 2025