Abstract

The electroweak phase transition in GUT inspired $SO(5)\times U(1) \times SU(3)$ gauge-Higgs unification is shown to be weakly first order and occurs at $T = T_c^{\rm EW} \sim 163\,$GeV, which is very similar to the behavior in the standard model in perturbation theory. A new phase appears at higher temperatures. $SU(2)_L \times U(1)_Y$ ($\theta_H=0$) and $SU(2)_R \times U(1)_{Y'}$ ($\theta_H=\pi$) phases become almost degenerate above $T \sim m_{\rm KK}$ where $m_{\rm KK}$ is the Kaluza-Klein mass scale typically around 13$\,$TeV and $\theta_H$ is the Aharonov-Bohm phase along the fifth dimension. The two phases become degenerate at $T = T_c^{\rm LR} \sim m_{\rm KK}$. As the temperature drops in the evolution of the early Universe the $SU(2)_R \times U(1)_{Y'}$ phase becomes unstable. The tunneling rate from the $SU(2)_R \times U(1)_{Y'}$ phase to the $SU(2)_L \times U(1)_Y$ phase becomes sizable and a first-order phase transition takes place at $T=2.5 \sim 2.6\,$TeV. The amount of gravitational waves produced in this left-right phase transition is small, far below the reach of the sensitivity of Laser Interferometer Space Antenna (LISA). A detailed analysis of the $SU(2)_R \times U(1)_{Y'}$ phase is also given. It is shown that the $W$ boson, $Z$ boson and photon, with $\theta_H$ varying from 0 to $\pi$, are transformed to gauge bosons in the $SU(2)_R \times U(1)_{Y'}$ phase. Gauge couplings and wave functions of quarks, leptons and dark fermions in the $SU(2)_R \times U(1)_{Y'}$ phase are determined.

Highlights

  • The standard model (SM), SUð3ÞC × SUð2ÞL × Uð1ÞY gauge theory, has been firmly established at low energies

  • We focus on the grand unified theory (GUT) inspired SOð5Þ × Uð1ÞX × SUð3ÞC gauge-Higgs unification (GHU) model specified in Refs. [15,16,17]

  • We will show that the behavior of the EW phase transition in GHU is very similar to that in the SM, though the mechanism of EW symmetry breaking at zero temperature is quite different

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Summary

INTRODUCTION

The standard model (SM), SUð3ÞC × SUð2ÞL × Uð1ÞY gauge theory, has been firmly established at low energies. In SOð5Þ × Uð1ÞX × SUð3ÞC GHU the SUð2ÞL × Uð1ÞY symmetric phase corresponds to θH 1⁄4 0, which dynamically breaks down to Uð1ÞEM with nonvanishing θH ∼ 0.1 at zero temperature. Yukawa couplings of quarks and leptons, Higgs couplings of W and Z are suppressed, compared to those in the SM, by a factor or cos θH, but do not depend on details of the parameters in the dark fermion sector. We will show that the behavior of the EW phase transition in GHU is very similar to that in the SM, though the mechanism of EW symmetry breaking at zero temperature is quite different. It will be shown further that a new phase transition, called the LR phase transition, emerges around 2.5 TeV in the GUT inspired GHU

EFFECTIVE POTENTIAL AT FINITE TEMPERATURE
ELECTROWEAK PHASE TRANSITION
LEFT-RIGHT PHASE TRANSITION
Critical temperatures TLc1R and TLc2R
Twisted gauge
AðμjkÞTjk
Gauge symmetry and couplings
SUMMARY AND DISCUSSIONS
CA ðC12Þ
Full Text
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