Effective temperature of a superfluid flowing in a random potential
Abstract
The spatial fluctuations of a superfluid flowing in a weak random potential are investigated. We employ classical field theory to demonstrate that the disorder-averaged nonequilibrium second-order correlation of the order parameter at zero temperature is identical to the thermally averaged equilibrium counterpart of a uniform superfluid at an effective temperature. The physics behind this equivalence is that scattering of a moving condensate by disorder has the same effect on the correlation function as equilibrium thermal excitations. The correlation function exhibits an exponential decay in one dimension and a power-law decay in two dimensions. We show that the effective temperature can be measured in an interference experiment of ultracold atomic gases.
Cite
@article{arxiv.1909.11997,
title = {Effective temperature of a superfluid flowing in a random potential},
author = {Taiki Haga and Masahito Ueda},
journal= {arXiv preprint arXiv:1909.11997},
year = {2021}
}
Comments
10 pages, 3 figures