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Many-body cavity quantum electrodynamics with driven inhomogeneous emitters
被引:0
|作者:
Mi Lei
Rikuto Fukumori
Jake Rochman
Bihui Zhu
Manuel Endres
Joonhee Choi
Andrei Faraon
机构:
[1] California Institute of Technology,Kavli Nanoscience Institute
[2] California Institute of Technology,Thomas J. Watson, Sr., Laboratories of Applied Physics
[3] California Institute of Technology,Institute for Quantum Information and Matter
[4] The University of Oklahoma,Homer L. Dodge Department of Physics and Astronomy
[5] California Institute of Technology,Division of Physics, Mathematics and Astronomy
[6] Stanford University,Department of Electrical Engineering
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摘要:
Quantum emitters coupled to optical resonators are quintessential systems for exploring fundamental phenomena in cavity quantum electrodynamics (cQED)1 and are commonly used in quantum devices acting as qubits, memories and transducers2. Many previous experimental cQED studies have focused on regimes in which a small number of identical emitters interact with a weak external drive3–6, such that the system can be described with simple, effective models. However, the dynamics of a disordered, many-body quantum system subject to a strong drive have not been fully explored, despite its importance and potential in quantum applications7–10. Here we study how a large, inhomogeneously broadened ensemble of solid-state emitters coupled with high cooperativity to a nanophotonic resonator behaves under strong excitation. We discover a sharp, collectively induced transparency (CIT) in the cavity reflection spectrum, resulting from quantum interference and collective response induced by the interplay between driven inhomogeneous emitters and cavity photons. Furthermore, coherent excitation within the CIT window leads to highly nonlinear optical emission, spanning from fast superradiance to slow subradiance11. These phenomena in the many-body cQED regime enable new mechanisms for achieving slow light12 and frequency referencing, pave a way towards solid-state superradiant lasers13 and inform the development of ensemble-based quantum interconnects9,10.
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页码:271 / 276
页数:5
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