English

Bootstrap Dynamical Symmetry Breaking with New Heavy Chiral Quarks

High Energy Physics - Phenomenology 2013-02-01 v2 High Energy Physics - Theory

Abstract

A Higgs-like new boson with mass around 126 GeV is now established, but its true nature probably cannot be settled with 2011--2012 LHC data. We assume it is a dilaton with couplings weaker than the Higgs boson (except to γγ\gamma\gamma and gggg), and explore dynamical symmetry breaking (DSB) by strong Yukawa coupling of a yet unseen heavy chiral quark doublet QQ. Assuming the actual Higgs boson to be heavy, the Goldstone boson GG of electroweak symmetry breaking still couples to QQ with Yukawa coupling λQ\lambda_Q. A ``bootstrap" gap equation without a Higgs particle is constructed. Electroweak symmetry breaking via strong λQ\lambda_Q generates both heavy mass for QQ, while self-consistently justifying GG as a massless Goldstone particle in the loop. The spontaneous breaking of scale invariance in principle \emph{allows} for a dilaton. We numerically solve such a gap equation and find the mass of the heavy quark to be a couple of TeV. We offer a short critique on the results of the scale-invariant model of Hung and Xiong, where a similar gap equation is built with a massless scalar doublet. Through this we show that a light SM Higgs at 126 GeV cannot be viable within our approach to DSB, while a dilaton with weaker couplings is consistent with our main result.

Keywords

Cite

@article{arxiv.1206.6063,
  title  = {Bootstrap Dynamical Symmetry Breaking with New Heavy Chiral Quarks},
  author = {Yukihiro Mimura and Wei-Shu Hou and Hiroaki Kohyama},
  journal= {arXiv preprint arXiv:1206.6063},
  year   = {2013}
}

Comments

updated with ICHEP and HCP 2012 results on discovery of Higgs-like particle, version still under review at JHEP (figures unchanged)

R2 v1 2026-06-21T21:25:55.084Z