English

Phase Transitions in Nonreciprocal Driven-Dissipative Condensates

Quantum Physics 2025-09-26 v3 Mesoscale and Nanoscale Physics Quantum Gases Statistical Mechanics

Abstract

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 post-selection and is experimentally realizable in platforms such as superconducting circuits.

Keywords

Cite

@article{arxiv.2502.05267,
  title  = {Phase Transitions in Nonreciprocal Driven-Dissipative Condensates},
  author = {Ron Belyansky and Cheyne Weis and Ryo Hanai and Peter B. Littlewood and Aashish A. Clerk},
  journal= {arXiv preprint arXiv:2502.05267},
  year   = {2025}
}

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R2 v1 2026-06-28T21:36:47.560Z