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March 3, 2026Journal of High Energy Physics7 citationsOpen Access

Cosmological phase transitions without high-temperature expansions

PNPablo NavarreteRPRisto PaatelainenKSKaapo Seppänen

Key Points

  • Equilibrium thermodynamic properties are calculated for cosmological phase transitions with high loop accuracy, enhancing precision.
  • The framework successfully incorporates hard and soft momentum scales, providing a unified treatment in calculations.
  • Using Loop-Tree Duality, the approach enables efficient numerical evaluations of complex thermal sum-integrals.
  • Additionally, this method allows for significant predictions regarding strong first-order phase transitions and gravitational-wave signals.

Abstract

A bstract We introduce a new framework for perturbatively computing equilibrium thermodynamic properties of cosmological phase transitions to high loop orders, using the full four-dimensional resummed thermal effective potential and avoiding the limitations of standard high-temperature approximations. By systematically disentangling the physics of hard and soft momentum scales, our approach unifies their treatment within a single expression, enabling consistent handling of both vacuum and thermal divergences across all mass regimes. This core innovation enables the efficient numerical evaluation of massive multiloop thermal sum-integrals, achieved through a finite-temperature generalization of Loop-Tree Duality — an advanced algorithmic technique originally developed to render vacuum Feynman integrals numerically tractable via Monte Carlo methods. As a proof of principle, we apply the framework to a scalar-Yukawa model, presenting a complete two-loop calculation and a novel three-loop extension — the first fully massive three-loop sum-integral computation without relying on high-temperature expansions. Our approach opens the door to precise perturbative predictions of the phase structure in a broad class of beyond-the-Standard-Model scenarios, including those featuring strong first-order phase transitions relevant for gravitational-wave signals, where conventional high-temperature approximations break down.

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Cite This Study

Navarrete et al. (2026) studied this question.

synapsesocial.com/papers/69a75c19c6e9836116a24912https://doi.org/10.1007/jhep01(2026)113
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