English

Inflation in the Scale Symmetric Standard Model and Weyl geometry

High Energy Physics - Phenomenology 2026-04-01 v2 High Energy Physics - Theory

Abstract

This work explores the possibility of inflation in a scale-symmetric extension of the Standard Model Higgs sector, where the Higgs field ϕ1\phi_1 is coupled to a singlet scalar, the dilaton ϕ0\phi_0. The two-scalar theory is formulated within Weyl geometry, which modifies the Einstein frame form of the resulting single-field inflationary potential. We extend the analysis to include quantum corrections, incorporating curvature effects in the one-loop effective potential. We find that the resulting spectral index nsn_s and tensor-to-scalar ratio r0.002r_{0.002} can be consistent with the Planck 2018 observational constraints. The predicted value r0.002106r_{0.002} \lesssim 10^{-6} remains too small to yield a detectable gravitational wave signal. In the regime with a strong hierarchy between the non-minimal couplings, ξ1ξ0\xi_1\ll\xi_0, the unitarity cutoff in the large-field background, ΛUVMP/ξ1\Lambda_{UV}\sim M_P/\sqrt{\xi_1}, lies below the energy scales relevant during inflation.

Keywords

Cite

@article{arxiv.2506.14617,
  title  = {Inflation in the Scale Symmetric Standard Model and Weyl geometry},
  author = {Z. Lalak and P. Michalak},
  journal= {arXiv preprint arXiv:2506.14617},
  year   = {2026}
}