Localization in open quantum systems
Abstract
In an isolated single-particle quantum system a spatial disorder can induce Anderson localization. Being a result of interference, this phenomenon is expected to be fragile in the face of dissipation. Here we show that dissipation can drive a disordered system into a steady state with tunable localization properties. This can be achieved with a set of identical dissipative operators, each one acting non-trivially only on a pair of neighboring sites. Operators are parametrized by a uniform phase, which controls selection of Anderson modes contributing to the state. On the microscopic level, quantum trajectories of a system in a localized steady regime exhibit intermittent dynamics consisting of long-time sticking events near selected modes interrupted by jumps between them.
Cite
@article{arxiv.1612.01503,
title = {Localization in open quantum systems},
author = {I. Yusipov and T. Laptyeva and S. Denisov and M. Ivanchenko},
journal= {arXiv preprint arXiv:1612.01503},
year = {2017}
}
Comments
5 pages, 5 figures