Dynamical Equilibration Across a Quenched Phase Transition in a Trapped Quantum Gas
Abstract
The formation of an equilibrium quantum state from an uncorrelated thermal one through the dynamical crossing of a phase transition is a central question of non-equilibrium many-body physics. During such crossing, the system breaks its symmetry by establishing numerous uncorrelated regions separated by spontaneously-generated defects, whose emergence obeys a universal scaling law with the quench duration. Much less is known about the ensuing re-equilibrating or "coarse-graining" stage, which is governed by the evolution and interactions of such defects under system-specific and external constraints. In this work we perform a detailed numerical characterization of the entire non-equilibrium process, addressing subtle issues in condensate growth dynamics and demonstrating the quench-induced decoupling of number and coherence growth during the re-equilibration process. Our unique visualizations not only reproduce experimental measurements in the relevant regimes, but also provide valuable information in currently experimentally-inaccessible regimes.
Cite
@article{arxiv.1712.08074,
title = {Dynamical Equilibration Across a Quenched Phase Transition in a Trapped Quantum Gas},
author = {I. -K. Liu and S. Donadello and G. Lamporesi and G. Ferrari and S. -C. Gou and F. Dalfovo and N. P. Proukakis},
journal= {arXiv preprint arXiv:1712.08074},
year = {2018}
}
Comments
Supplementary Movie Previes: SM-Movie-1: https://youtu.be/3q7-CvuBylg SM-Movie-2: https://youtu.be/-Gymaiv9rC0 SM-Movie-3: https://youtu.be/w-O2SPiw3nE SM-Movie-4: https://youtu.be/P4xGyr4dwKI