<p>Recently, the experimental values of the muon (<i>g</i> − 2)<sub><i>μ</i></sub> and of the <i>W</i> boson mass <i>m</i><sub><i>W</i></sub> have both indicated significant deviations from the SM predictions, motivating the exploration of extensions with extra particles and symmetries. We revisit a lepton portal model with U(1)<sup><i>′</i></sup> gauge symmetry where an extra Higgs doublet, a scalar singlet and one SU(2)<sub><i>L</i></sub> singlet vector-like fermion are introduced. In this model, (<i>g</i> − 2)<sub><i>μ</i></sub> can be explained by extra one-loop contributions from the vector-like lepton and the <i>Z</i><sup>′</sup> boson, whereas <i>m</i><sub><i>W</i></sub> can be increased by a tree-level mixing between the <i>Z</i> and <i>Z</i><sup>′</sup>. Setting the <i>Z</i><sup>′</sup> and lepton couplings at low energies to account for the SM anomalies, we perform a Renormalization Group analysis to investigate on the high-energy behaviour of the model, in particular on the issue of vacuum stability. We find that in the alignment limit for the two Higgs doublets, the Landau pole and the scale where perturbativity is lost are of order 10 – 100 TeV, not far from the scales experimentally reached so far, and sensibly lower than the stability scale. We show how the Landau pole can be increased up to ~ 10<sup>9</sup> GeV in a misaligned scenario where the experimental anomalies are still accommodated and a positive shift of the Higgs quartic coupling to improve stability can be achieved.</p>

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Standard Model anomalies and vacuum stability for lepton portals with extra U(1) symmetry

  • Carlo Branchina,
  • Hyun Min Lee,
  • Kimiko Yamashita

摘要

Recently, the experimental values of the muon (g − 2)μ and of the W boson mass mW have both indicated significant deviations from the SM predictions, motivating the exploration of extensions with extra particles and symmetries. We revisit a lepton portal model with U(1) gauge symmetry where an extra Higgs doublet, a scalar singlet and one SU(2)L singlet vector-like fermion are introduced. In this model, (g − 2)μ can be explained by extra one-loop contributions from the vector-like lepton and the Z boson, whereas mW can be increased by a tree-level mixing between the Z and Z. Setting the Z and lepton couplings at low energies to account for the SM anomalies, we perform a Renormalization Group analysis to investigate on the high-energy behaviour of the model, in particular on the issue of vacuum stability. We find that in the alignment limit for the two Higgs doublets, the Landau pole and the scale where perturbativity is lost are of order 10 – 100 TeV, not far from the scales experimentally reached so far, and sensibly lower than the stability scale. We show how the Landau pole can be increased up to ~ 109 GeV in a misaligned scenario where the experimental anomalies are still accommodated and a positive shift of the Higgs quartic coupling to improve stability can be achieved.