English

Cavity-Mediated Gas-Liquid Transition

Quantum Gases 2025-06-24 v4 Quantum Physics

Abstract

We study the gas-liquid transition in a binary Bose-Einstein condensate, where the two Zeeman-shifted hyperfine spin components are coupled by cavity-assisted Raman processes. Below a critical Zeeman field, the cavity becomes superradiant for an infinitesimally small pumping strength, where the enhanced superradiance is facilitated by the simultaneous formation of quantum droplet, a self-bound liquid phase stabilized by quantum fluctuations. Above the critical Zeeman field, the gas-liquid transition only takes place at a finite pumping strength after the system becomes superradiant. As the back action of the gas-liquid transition, the superradiant cavity field undergoes an abrupt jump at the first-order transition point. Furthermore, as a result of the fixed density ratio of the quantum droplet, the cavity field exhibits a linear scaling with the pumping strength in the liquid phase. These features serve as prominent signals for the cavity-mediated gas-liquid transition and coexistence, which derive from the interplay of Zeeman field, cavity-assisted spin mixing, and quantum fluctuations.

Cite

@article{arxiv.2506.08830,
  title  = {Cavity-Mediated Gas-Liquid Transition},
  author = {Fan Zhang and Haowei Li and Wei Yi},
  journal= {arXiv preprint arXiv:2506.08830},
  year   = {2025}
}
R2 v1 2026-07-01T03:09:10.222Z