A nonperturbative test of nucleation calculations for strong phase transitions
arXiv:2404.01876 · doi:10.1103/PhysRevD.111.L051901
Abstract
Nucleation rate computations are of broad importance in particle physics and cosmology. Perturbative calculations are often used to compute the nucleation rate , but these are incomplete. We perform nonperturbative lattice simulations of nucleation in a scalar field theory with a tree-level barrier, computing a final result extrapolated to the thermodynamic and continuum limits. Although the system in question should be well-described by a complete one-loop perturbative calculation, we find only qualitative agreement with the full perturbative result, with a 20% discrepancy in . Our result motivates further testing of the current nucleation paradigm.
6 pages, 4 figures plus appendix, v2: fixed typo in tree-level and LPA calculation; conclusions unchanged, v3: updated to match the published version, fixed errors in supplemental material equations
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