arXiv:2511.09601·v2·High Energy Physics — Phenomenology
Sensitivity of Standard Model Vacuum Stability to Enhanced Scalar Couplings: A Coupling Scan and its Implications for Radiatively Broken Electroweak Symmetry
Farrukh A. Chishtie🇨🇦 · Sirous Homayouni🇺🇸
Abstract
We study how Standard Model vacuum stability depends on the Higgs quartic coupling at the electroweak matching scale, parameterized through a dimensionless enhancement factor , with the observed Higgs mass held fixed at ~GeV. This is a scan of the coupling itself, treated as a free parameter set by physics beyond the Standard Model, and is distinct from the Higgs-mass scan that underlies the conventional stability bound. Using the complete three-loop renormalization group equations including all gauge and Yukawa couplings, we find a critical threshold separating the metastable Standard Model trajectory from absolutely stable trajectories. At this threshold the matching-scale coupling is , which reproduces the established three-loop absolute-stability boundary, providing an internal consistency check of the framework. The instability scale is highly sensitive to near the threshold, with a logarithmic susceptibility of order as , larger by two to three orders of magnitude than the analogous susceptibility of to . For the vacuum is absolutely stable and develops an ultraviolet Landau pole whose scale falls rapidly with increasing : for moderate enhancement the pole lies near the Planck scale, while for the large enhancement associated with radiative electroweak symmetry breaking the matching-scale coupling is and perturbative validity is lost by ~GeV.
Comments: 9 pages, LaTeX, additional clarifications made