A Class of Nonperturbative Configurations in Abelian-Higgs Models: Complexity from Dynamical Symmetry Breaking
Abstract
We present a numerical investigation of the dynamics of symmetry breaking in both Abelian and non-Abelian Higgs models in three spatial dimensions. We find a class of time-dependent, long-lived nonperturbative field configurations within the range of parameters corresponding to type-1 superconductors, that is, with vector masses () larger than scalar masses (). We argue that these emergent nontopological configurations are related to oscillons found previously in other contexts. For the Abelian-Higgs model, our lattice implementation allows us to map the range of parameter space -- the values of -- where such configurations exist and to follow them for times . An investigation of their properties for -symmetric models reveals an enormously rich structure of resonances and mode-mode oscillations reminiscent of excited atomic states. For the SU(2) case, we present preliminary results indicating the presence of similar oscillonic configurations.
Keywords
Cite
@article{arxiv.0808.0514,
title = {A Class of Nonperturbative Configurations in Abelian-Higgs Models: Complexity from Dynamical Symmetry Breaking},
author = {Marcelo Gleiser and Joel Thorarinson},
journal= {arXiv preprint arXiv:0808.0514},
year = {2009}
}
Comments
21 pages, 19 figures, prd, revtex