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Electroweak Bubble Nucleation, Nonperturbatively

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arxiv hep-ph/0009132 v2 pith:OWFEQDNM submitted 2000-09-11 hep-ph hep-lat

classification hep-phhep-lat
keywords higgsphasetransitionbubbleelectroweakmassnonperturbativelynucleation
verification ladder T0 review T1 audit T2 compute T3 formal
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We present a lattice method to compute bubble nucleation rates at radiatively induced first order phase transitions, in high temperature, weakly coupled field theories, nonperturbatively. A generalization of Langer's approach, it makes no recourse to saddle point expansions and includes completely the dynamical prefactor. We test the technique by applying it to the electroweak phase transition in the minimal standard model, at an unphysically small Higgs mass which gives a reasonably strong phase transition (lambda/g^2 =0.036, which corresponds to m(Higgs)/m(W) = 0.54 at tree level but does not correspond to a positive physical Higgs mass when radiative effects of the top quark are included), and compare the results to older perturbative and other estimates. While two loop perturbation theory slightly under-estimates the strength of the transition measured by the latent heat, it over-estimates the amount of supercooling by a factor of 2.

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Forward citations

Cited by 10 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Seeded bubble nucleation on the lattice

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    First non-perturbative lattice computation of seeded bubble nucleation rate in the cubic anisotropy model agrees with semi-classical EFT prediction on domain walls including fluctuation determinant.

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    hep-th 2026-07 conditional novelty 7.5 of 10

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    With a new gradient-descent definition of the metastable phase, lattice simulations reproduce Langer's nucleation rate for the first time in a conservative system.

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  9. Consistent Thermal Resummation and Phase Transitions with 2PI Methods

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  10. Detecting gravitational waves from cosmological phase transitions with LISA: an update

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