Defect formation beyond Kibble-Zurek mechanism and holography
Abstract
We study the dynamic after a smooth quench across a continuous transition from the disordered phase to the ordered phase. Based on scaling ideas, linear response and the spectrum of unstable modes, we develop a theoretical framework, valid for any second order phase transition, for the early-time evolution of the condensate in the broken phase. Our analysis unveils a novel period of non-adiabatic evolution after the system passes through the phase transition, where a parametrically large amount of coarsening occurs before a well-defined condensate forms. Our formalism predicts a rate of defect formation parametrically smaller than the Kibble-Zurek prediction and yields a criterion for the break-down of Kibble-Zurek scaling for sufficiently fast quenches. We numerically test our formalism for a thermal quench in a 2 + 1 dimensional holographic superfluid. These findings, of direct relevance in a broad range of fields including cold atom, condensed matter, statistical mechanism and cosmology, are an important step towards a more quantitative understanding of dynamical phase transitions.
Keywords
Cite
@article{arxiv.1407.1862,
title = {Defect formation beyond Kibble-Zurek mechanism and holography},
author = {Paul M. Chesler and Antonio M. Garcia-Garcia and Hong Liu},
journal= {arXiv preprint arXiv:1407.1862},
year = {2015}
}
Comments
24 pages, 5 figures