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Mesoscopic cavity quantum electrodynamics with phase-disordered emitters in a Kerr nonlinear resonator
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The field of cavity quantum electrodynamics (QED) has seen a recent resurgence of interest in few- and many-body physics owing to the realization that the breaking of symmetries and the presence of disorder can give rise to entirely new phenomena. Here we demonstrate a few-emitter cavity QED system capable of realizing new Hamiltonians in quantum optics based on breaking of symmetries and the realization of an in situ Kerr nonlinearity. Our experiment relies on a high-finesse silicon carbide whispering gallery mode resonator hosting an ensemble of silicon vacancy color centers. The simultaneous presence of spectral and spatial disorder of the mesoscopic atom system gives rise to emergent chirality, and the optical nonlinearity of the silicon carbide host crystal enables the observation of atom-photon correlations induced by a four-photon nonlinear process. This work demonstrates the potential for solid state defect systems to realize emerging proposals and to study fundamental physics in quantum electrodynamics.
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Cited by 2 Pith papers
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Steady-state spin order and superradiance beyond the Dicke limit
Incoherently pumped atoms in a ring cavity or a bidirectional waveguide sustain steady-state superradiant order with N² intensity, via chiral symmetry breaking or phase separation respectively.
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Many-Body Entanglement in Solid-State Emitters
A wide-ranging survey of how solid-state quantum emitters coupled to nanophotonics are being pushed toward many-body entangled states, and of the coherence and inhomogeneity barriers that stand in the way.
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