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First-order Electroweak phase transition at finite density

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arxiv 2407.01981 v1 pith:KEOPHZMR submitted 2024-07-02 hep-ph astro-ph.COhep-th

First-order Electroweak phase transition at finite density

classification hep-ph astro-ph.COhep-th
keywords phasetransitionfinitedensitydimensionaleffectivepotentialscale
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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We study the Electroweak phase transition with the Standard Model effective field theory at finite temperature and finite density. Utilizing the dimensional reduction approach, we construct the tree dimensional thermal effective field theory at finite density and investigate the phase transition dynamics. We evaluate how the results depend on the renormalization scale and the chemical potential. Our results show that, with the tree dimensional thermal effective potential at 2-loop level, we can effectively reduce the theoretical uncertainty in the calculations of the phase transition parameters due to the renormalization scale dependence, and the new physics scale is restricted to be $\Lambda\lesssim (770-800)$ GeV by the baryon number washout avoidance condition. Meanwhile, the presence of the chemical potential would affect the phase transition parameter and make the constraints from the baryon number washout avoidance condition more strict, especially for weaker first-order phase transition scenarios at higher new physics scales.

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Cited by 3 Pith papers

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  1. SIRENA -- Sum-Integral REductioN Algorithm

    hep-ph 2026-05 unverdicted novelty 7.0

    SIRENA automates IBP reduction of sum-integrals in finite-temperature QFT, reproduces known results to 3 loops, supplies new 3-loop fermionic reductions, and derives an analytic factorization formula for arbitrary 2-l...

  2. Matchotter: An Automated Tool for Dimensional Reduction at Finite Temperature

    hep-ph 2026-04 unverdicted novelty 6.0

    Matchotter automates one-loop finite-temperature dimensional reduction and supersoft matching for generic Lagrangians using functional techniques.

  3. Hard thermal contributions to phase transition observables at NNLO

    hep-ph 2026-02 conditional novelty 6.0

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