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Computing the gauge-invariant bubble nucleation rate in finite temperature effective field theory

7 Pith papers cite this work. Polarity classification is still indexing.

7 Pith papers citing it
abstract

A gauge-invariant framework for computing bubble nucleation rates at finite temperature in the presence of radiative barriers was presented and advocated for model-building and phenomenological studies in an accompanying article arXiv:2112.05472. Here, we detail this computation using the Abelian Higgs Model as an illustrative example. Subsequently, we recast this approach in the dimensionally-reduced high-temperature effective field theory for nucleation. This allows for including several higher order thermal resummations and furthermore delineate clearly the approach's limits of validity. This approach provides for robust perturbative treatments of bubble nucleation during possible first-order cosmic phase transitions, with implications for electroweak baryogenesis and production of a stochastic gravitational wave background. Furthermore, it yields a sound comparison between results of perturbative and non-perturbative computations.

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hep-ph 7

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2026 5 2025 2

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background 2

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representative citing papers

Polyakov Loops Tame Phase Transitions

hep-ph · 2026-07-07 · conditional · novelty 6.0

Polyakov loop contributions to the thermal effective potential soften electroweak phase transitions, disfavoring first-order transitions and suppressing gravitational-wave signals.

Constraining the real scalar singlet extension of the SM

hep-ph · 2026-06-10 · unverdicted · novelty 4.0

Real scalar singlet extension of SM permits strong first-order EWPT for singlet masses up to ~1 TeV; HL-LHC tests large fraction of space while FCC offers discovery reach.

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Showing 7 of 7 citing papers.