English

Third-Family Quark-Lepton Unification and Electroweak Precision Tests

High Energy Physics - Phenomenology 2025-08-08 v3 High Energy Physics - Experiment

Abstract

We analyze the compatibility of the hypothesis of third-family quark-lepton unification at the TeV scale with electroweak precision data, lepton flavor universality tests, and high-pTp_T constraints. We work within the framework of the UV complete flavor non-universal 4321 gauge model, which is matched at one loop to the Standard Model Effective Field Theory. For consistency, all electroweak precision observables are also computed at one loop within the effective field theory. At tree level, the most sizeable corrections are to WτντW\rightarrow \tau\nu_\tau and ZντντZ \to \nu_\tau \nu_\tau due to integrating out a pseudo-Dirac singlet fermion required by the model for neutrino mass generation. At loop level, the new colored states of the model generate large flavor-universal contributions to the electroweak precision observables via leading- and next-to-leading log running effects, yielding a significant improvement in the electroweak fit (including an increase in the WW-boson mass). These effects cannot be decoupled if the model addresses the charged-current BB-meson anomalies. Overall, we find good compatibility between the data sets, while simultaneously satisfying all low- and high-energy constraints.

Keywords

Cite

@article{arxiv.2302.11584,
  title  = {Third-Family Quark-Lepton Unification and Electroweak Precision Tests},
  author = {Lukas Allwicher and Gino Isidori and Javier M. Lizana and Nudzeim Selimovic and Ben A. Stefanek},
  journal= {arXiv preprint arXiv:2302.11584},
  year   = {2025}
}

Comments

16 pages + appendices, 5 figures, version published in JHEP

R2 v1 2026-06-28T08:47:15.633Z