Ground state bistability of cold atoms in a cavity
arXiv:2207.01724 · doi:10.1103/PhysRevA.107.023713
Abstract
We experimentally demonstrate an optical bistability between two hyperfine atomic ground states, using a single mode of an optical resonator in the collective strong coupling regime. Whereas in the familiar case, the bistable region is created through atomic saturation, we report an effect between states of high quantum purity, which is essential for future information storage. The nonlinearity of the transitions arise from cavity-assisted pumping between ground states of cold, trapped atoms and the stability depends on the intensity of two driving lasers. We interpret the phenomenon in terms of the recent paradigm of first-order, driven-dissipative phase transitions, where the transmitted and driving fields are understood as the order and control parameters, respectively. The saturation-induced bistability is recovered for infinite drive in one of the controls. The order of the transition is confirmed experimentally by hysteresis in the order parameter when either of the two control parameters is swept repeatedly across the bistability region and the underlying phase diagram is predicted in line with semiclassical mean-field theory.
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Cited by in corpus (9)
- Conventional and unconventional Dicke models: Multistabilities and nonequilibrium dynamics
- Collective atom-cavity coupling and non-linear dynamics with atoms with multilevel ground states
- Non-Gaussian dynamics of quantum fluctuations and mean-field limit in open quantum central spin systems
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