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Many-Body Photon Blockade and Quantum Light Generation from Cavity Quantum Materials
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The strong coupling regime of photons and quantum materials inside optical cavities has emerged as a promising environment for manipulating states of matter with light. Here, in turn, we show that photons bear witness to cavity quantum-electrodynamical modifications of the material, leading to profoundly non-classical properties of light passing through the cavity. By generalizing quantum-optical input-output relations to correlated quantum materials, we study the second-order photon coherence g2(t) and demonstrate that antibunching of transmitted photons serves as direct evidence of light-induced changes to the cavity-embedded material. We show that materials near a quantum critical point can realize a collective many-body photon blockade, enabling the generation of single photons or Einstein-Podolsky-Rosen pairs via leveraging strong matter fluctuations. Our findings provide new routes for interrogating and harnessing cavity-embedded quantum materials as quantum light sources, as a resource for photon-based computation and quantum sensing.
Forward citations
Cited by 2 Pith papers
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Photon Correlation Spectroscopy as a Probe of Critical Fluctuations in Correlated Electron Systems
Photon bunching in light scattered from a bilayer MoSe2 moiré device peaks at the electron layer-polarization transition, showing photon correlations can read out critical density fluctuations.
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Floquet Theory of lattice electrons coupled to an off-resonant cavity
An off-resonant cavity mediates electron-electron interactions at first order in 1/omega_c, and for an SSH chain these interactions reshape the topological phase diagram at strong coupling.
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