English

The Effective Potential and First-Order Phase Transitions: Beyond Leading Order

High Energy Physics - Phenomenology 2014-11-17 v2

Abstract

Scenarios for electroweak baryogenesis require an understanding of the effective potential at finite temperature near a first-order electroweak phase transition. Working in Landau gauge, we present a calculation of the dominant two-loop corrections to the ring-improved one-loop potential in the formal limit g4λg2g^4 \ll \lambda \ll g^2, where λ\lambda is the Higgs self-coupling and gg is the electroweak coupling. The limit λg2\lambda \ll g^2 ensures that the phase transition is significantly first-order, and the limit g4λg^4 \ll \lambda allows us to use high-temperature expansions. We find corrections from 20 to 40\% at Higgs masses relevant to the bound computed for baryogenesis in the Minimal Standard Model. Though our numerical results seem to still rule out Minimal Standard Model baryogenesis, this conclusion is not airtight because the loop expansion is only marginal when corrections are as big as 40\%. We also discuss why super-daisy approximations do not correctly compute these corrections.

Keywords

Cite

@article{arxiv.hep-ph/9212235,
  title  = {The Effective Potential and First-Order Phase Transitions: Beyond Leading Order},
  author = {Peter Arnold and Olivier Espinosa},
  journal= {arXiv preprint arXiv:hep-ph/9212235},
  year   = {2014}
}

Comments

64 pages, Revised Version, Uw/PT-92-18. REVISION: fig. 7 and the paragraph describing it have been eliminated since the claim of IR divergence for fig. 7 was insane. None of the rest of the paper is affected

R2 v1 2026-07-22T14:16:16.924Z