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Optical superradiance of a pair of color centers in an integrated silicon-carbide-on-insulator microresonator
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Optical superradiance of a pair of color centers in an integrated silicon-carbide-on-insulator microresonator
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An outstanding challenge for color center-based quantum information processing technologies is the integration of optically-coherent emitters into scalable thin-film photonics. Here, we report on the integration of near-transform-limited silicon vacancy (V$_{\text{Si}}$) defects into microdisk resonators fabricated in a CMOS-compatible 4H-Silicon Carbide-on-Insulator platform. We demonstrate a single-emitter cooperativity of up to 0.8 as well as optical superradiance from a pair of color centers coupled to the same cavity mode. We investigate the effect of multimode interference on the photon scattering dynamics from this multi-emitter cavity quantum electrodynamics system. These results are crucial for the development of quantum networks in silicon carbide and bridge the classical-quantum photonics gap by uniting optically-coherent spin defects with wafer-scalable, state-of-the-art photonics.
Forward citations
Cited by 3 Pith papers
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Constructing mode-resolved quantum optical models for emitters in photonic crystals
A symmetry-constrained method builds minimal photonic lattice models that preserve full position- and polarization-dependent emitter couplings and reproduce macroscopic QED at weak coupling.
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Exact Regions of Superradiant Instability of Kerr-Newman Black Holes and Massive Scalar Fields
Superradiant instability of Kerr-Newman black holes is confined to μ > qQ/M and below an analytically determined boundary that disagrees with older numerics.
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Constructing mode-resolved quantum optical models for emitters in photonic crystals
A constructive method combines symmetry-constrained tight-binding models with numerical photonic bands and fields to produce mode-resolved quantum-optical lattice Hamiltonians for emitters in photonic crystals.
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