Weakly first-order phase transitions: the epsilon expansion vs. numerical simulations
High Energy Physics - Phenomenology
2016-09-06 v1 Statistical Mechanics
High Energy Physics - Lattice
High Energy Physics - Theory
Abstract
Some phase transitions of cosmological interest may be weakly first-order and cannot be analyzed by a simple perturbative expansion around mean field theory. We propose a simple two-scalar model--the cubic anisotropy model--as a foil for theoretical techniques to study such transitions, and we review its similarities and dissimilarities to the electroweak phase transition in the early universe. We present numerical Monte Carlo results for various discontinuities across very weakly first-order transitions in this model and, as an example, compare them to epsilon-expansion results. For this purpose, we have computed through next-to-next-to-leading order in epsilon.
Cite
@article{arxiv.hep-ph/9611201,
title = {Weakly first-order phase transitions: the epsilon expansion vs. numerical simulations},
author = {Peter Arnold and Stephen R. Sharpe and Laurence G. Yaffe and Yan Zhang},
journal= {arXiv preprint arXiv:hep-ph/9611201},
year = {2016}
}
Comments
4 pages, Latex, uses revtex, epsf macro packages