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Updated: May 31, 2026

Cooling an Optically Trapped Ultracold Fermi Gas by Periodical Driving
Published on: March 30, 2017
Quench Instabilities of a Strongly Interacting Quantum Gas in an Optical Cavity
Filip Marijanović1, Sambuddha Chattopadhyay1,2, Luka Skolc1
1ETH Zürich, Institute for Theoretical Physics, CH-8093 Zürich, Switzerland.
Abstract:
Recent quench experiments on ultracold atoms in optical cavities provide a clean platform for studying how long-range interactions in atomic media structure their nonequilibrium dynamics. Motivated by these experiments, we provide a theoretical analysis of the quench instabilities that lead to the formation of superradiance as the hybrid system is driven across the self-organization transition. Working with both ultracold bosonic and fermionic gases, we compute the rate at which order forms and quantify the fluctuations of the prequench state that seed the instability. Our results quantitatively match existing experiments on free fermions and make predictions for quench experiments involving interacting Bose and Fermi gases. Our Letter suggests that the nonlocal nature of the photon-mediated interactions generates ordering dynamics that are qualitatively different than those observed in short-range interacting systems.
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