English

Quantum kinetics of ultracold fermions coupled to an optical resonator

Quantum Gases 2014-10-22 v1 Quantum Physics

Abstract

We study the far-from-equilibrium statistical mechanics of periodically driven fermionic atoms in a lossy optical resonator. We show that the interplay of the Fermi surface with cavity losses leads to sub-natural cavity linewidth narrowing, squeezed light, and out-of-equilibrium quantum statistics of the atoms. Adapting the Keldysh approach, we set-up and solve a quantum kinetic Boltzmann equation in a systematic 1/N1/N expansion with NN the number of atoms. In the strict thermodynamic limit N,VN,V\rightarrow \infty, N/V=const.N/V=\text{const.} we find the atoms (fermions or bosons) remain immune against cavity-induced heating or cooling. At next-to-leading order in 1/N1/N, we find a "one-way thermalization" of the atoms determined by cavity decay. We argue that, in absence of an equilibrium fluctuation-dissipation relation, the long-time limit Δt\Delta t \rightarrow \infty does not commute with the thermodynamic limit NN\rightarrow \infty, such that for the physically relevant case of large but finite NN, the dynamics ultimately becomes strongly coupled, especially close to the superradiance phase transition.

Keywords

Cite

@article{arxiv.1407.5642,
  title  = {Quantum kinetics of ultracold fermions coupled to an optical resonator},
  author = {Francesco Piazza and Philipp Strack},
  journal= {arXiv preprint arXiv:1407.5642},
  year   = {2014}
}

Comments

41 pages. Bosons are also treated