Many-body non-Hermitian skin effect under dynamic gauge coupling
Abstract
We study an atom-cavity hybrid system where fermionic atoms in a one-dimensional lattice are subject to a cavity-induced dynamic gauge potential. The gauge coupling leads to highly-degenerate steady states in which the fermions accumulate to one edge of the lattice under an open boundary condition. Such a phenomenon originates from the many-body Liouvillian superoperator of the system, which, being intrinsically non-Hermitian, is unstable against boundary perturbations and manifests the non-Hermitian skin effect. Contrary to the single-body case, the steady state of a multi-atom system is approached much slower under the open boundary condition, as the long-time damping of the cavity mode exhibits distinct rates at different times. This stage-wise slowdown is attributed to the competition between light-assisted hopping and the dynamic gauge coupling, which significantly reduces the steady-state degeneracy under the open boundary condition, as distinct hosts of quasi-steady states dominate the dynamics at different time scales.
Cite
@article{arxiv.2305.03891,
title = {Many-body non-Hermitian skin effect under dynamic gauge coupling},
author = {Haowei Li and Haojie Wu and Wei Zheng and Wei Yi},
journal= {arXiv preprint arXiv:2305.03891},
year = {2023}
}
Comments
13 pages, 7 figures