Phase Transitions in Nonreciprocal Driven-Dissipative Condensates
- 1. University of Chicago
- 2. Institute of Science Tokyo
Description
We investigate the influence of boundaries and spatial nonreciprocity on nonequilibrium driven-dissipative phase transitions. We focus on a one-dimensional lattice of nonlinear bosons described by a Lindblad master equation, where the interplay between coherent and incoherent dynamics generates nonreciprocal interactions between sites. Using a mean-field approach, we analyze the phase diagram under both periodic and open boundary conditions. For periodic boundaries, the system always forms a condensate at nonzero momentum and frequency, resulting in a time-dependent traveling wave pattern. In contrast, open boundaries reveal a far richer phase diagram, featuring multiple static and dynamical phases, as well as exotic phase transitions, including the spontaneous breaking of particle-hole symmetry associated with a critical exceptional point and phases with distinct bulk and edge behavior. Our model does not require postselection and is experimentally realizable in platforms such as superconducting circuits.
Data availability
The data that support the findings of this Letter are not publicly available upon publication because it is not technically feasible and/or the cost of preparing, depositing, and hosting the data would be prohibitive within the terms of this research project. The data are available from the authors upon reasonable request.Additional details
Identifiers
- DOI
- 10.1103/gphr-d1bc
- Other
- oai:uchicago.tind.io:16288
Funding
- Air Force Office of Scientific Research
- FA9550-19-1-0399
- Multidisciplinary University Research Initiative
- Simons Foundation
- 669487
- University of Chicago
- Japan Society for the Promotion of Science
- 23K19034
- National Science Foundation
- 2207383
- Transformative Research Areas
- 25H01364
- National Science Foundation
- PHY- 2317138