English

Thermal Masses and Bubble-Wall Friction in Cosmological Phase Transitions

High Energy Physics - Phenomenology 2026-07-16 v1 Cosmology and Nongalactic Astrophysics High Energy Physics - Theory

Abstract

Bubble-wall friction controls the dynamics of first-order cosmological phase transitions. In Boltzmann-equation approaches, a major uncertainty arises from infrared gauge bosons, whose contribution is artificially enhanced in the massless approximation. We study the impact of thermal masses by including them consistently in both the Liouville operator and the collision integrals. Thermal masses suppress the source term for out-of-equilibrium perturbations while also reducing interaction rates. These effects largely cancel for top quarks, giving only percent-level changes, but they strongly suppress the infrared gauge-boson contribution, shifting the dominant momenta to scales of order the temperature. As a result, gauge bosons become subleading and wall velocities are close to those obtained from top-quark friction alone. We illustrate this in the singlet-extended Standard Model. Our results show that thermal masses reduce the sensitivity of friction calculations to the poorly controlled infrared sector of the plasma.

Keywords

Cite

@article{arxiv.2607.14867,
  title  = {Thermal Masses and Bubble-Wall Friction in Cosmological Phase Transitions},
  author = {Carlo Branchina and Stefania De Curtis and Luigi Delle Rose and Alessio Notari and Giuliano Panico and Matthew Starbuck},
  journal= {arXiv preprint arXiv:2607.14867},
  year   = {2026}
}

Comments

29 pages, 13 figures