Turbulent relaxation to equilibrium in a two-dimensional quantum vortex gas
Abstract
We experimentally study emergence of microcanonical equilibrium states in the turbulent relaxation dynamics of a two-dimensional chiral vortex gas. Same-sign vortices are injected into a quasi-two-dimensional disk-shaped atomic Bose-Einstein condensate using a range of mechanical stirring protocols. The resulting long-time vortex distributions are found to be in excellent agreement with the meanfield Poisson-Boltzmann equation for the system describing the microcanonical ensemble at fixed energy and angular momentum . The equilibrium states are characterized by the corresponding thermodynamic variables of inverse temperature and rotation frequency . We are able to realize equilibria spanning the full phase diagram of the vortex gas, including on-axis states near zero-temperature, infinite temperature, and negative absolute temperatures. At sufficiently high energies the system exhibits a symmetry-breaking transition, resulting in an off-axis equilibrium phase at negative absolute temperature that no longer shares the symmetry of the container. We introduce a point-vortex model with phenomenological damping and noise that is able to quantitatively reproduce the equilibration dynamics.
Cite
@article{arxiv.2010.10049,
title = {Turbulent relaxation to equilibrium in a two-dimensional quantum vortex gas},
author = {Matthew T. Reeves and Kwan Goddard-Lee and Guillaume Gauthier and Oliver R. Stockdale and Hayder Salman and Timothy Edmonds and Xiaoquan Yu and Ashton S. Bradley and Mark Baker and Halina Rubinsztein-Dunlop and Matthew J. Davis and Tyler W. Neely},
journal= {arXiv preprint arXiv:2010.10049},
year = {2022}
}
Comments
V1: 16 pages, 7 figures, 6 in main text