English

Dynamical spin-orbit coupling of a quantum gas

Quantum Gases 2019-10-23 v1 Atomic Physics Quantum Physics

Abstract

We realize the dynamical 1D spin-orbit-coupling (SOC) of a Bose-Einstein condensate confined within an optical cavity. The SOC emerges through spin-correlated momentum impulses delivered to the atoms via Raman transitions. These are effected by classical pump fields acting in concert with the quantum dynamical cavity field. Above a critical pump power, the Raman coupling emerges as the atoms superradiantly populate the cavity mode with photons. Concomitantly, these photons cause a back-action onto the atoms, forcing them to order their spin-spatial state. This SOC-inducing superradiant Dicke phase transition results in a spinor-helix polariton condensate. We observe emergent SOC through spin-resolved atomic momentum imaging. Dynamical SOC in quantum gas cavity QED, and the extension to dynamical gauge fields, may enable the creation of Meissner-like effects, topological superfluids, and exotic quantum Hall states in coupled light-matter systems.

Keywords

Cite

@article{arxiv.1904.08388,
  title  = {Dynamical spin-orbit coupling of a quantum gas},
  author = {Ronen M. Kroeze and Yudan Guo and Benjamin L. Lev},
  journal= {arXiv preprint arXiv:1904.08388},
  year   = {2019}
}

Comments

4 pages, 4 figures; 2 pages of supplemental material

R2 v1 2026-06-23T08:42:59.964Z