English

CDF II $W$-mass anomaly faces first-order electroweak phase transition

High Energy Physics - Phenomenology 2023-03-14 v3

Abstract

We suggest an appealing strategy to probe a large class of scenarios beyond the Standard Model simultaneously explaining the recent CDF II measurement of the WW boson mass and predicting first-order phase transitions (FOPT) testable in future gravitational-wave (GW) experiments. Our analysis deploys measurements from the GW channels and high energy particle colliders. We discuss this methodology focusing on the specific example provided by an extension of the Standard Model of particle physics that incorporates an additional scalar SU(2)L\mathrm{SU}(2)_{\rm L} triplet coupled to the Higgs boson. We show that within this scenario a strong electroweak FOPT is naturally realised consistently with the measured WW boson mass-shift. Potentially observable GW signatures imply the triplet mass scale to be TeV-ish, consistently with the value preferred by the WW mass anomaly. This model can be tested in future space-based interferometers such as LISA, DECIGO, BBO, TianQin, TAIJI projects and in future colliders such as FCC, ILC, CEPC.

Keywords

Cite

@article{arxiv.2204.10315,
  title  = {CDF II $W$-mass anomaly faces first-order electroweak phase transition},
  author = {Andrea Addazi and Antonino Marciano and António P. Morais and Roman Pasechnik and Hao Yang},
  journal= {arXiv preprint arXiv:2204.10315},
  year   = {2023}
}

Comments

6 pages, 4 figures; references added; discussion extended; full numerical analysis including one-loop corrections performed in support of initial claims; two extra figures with parameter scan results and SNR for LISA added; included an author that, due to an unfortunate editing mistake in the first version was accidentally not included; conclusions unchanged; acknowledgments extended

R2 v1 2026-06-24T10:55:07.478Z