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Many-Body Quantum Optics in a Bose-Hubbard Waveguide
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Many-Body Quantum Optics in a Bose-Hubbard Waveguide
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Waveguide quantum electrodynamics (QED) studies the interaction between quantum emitters and guided photons in one-dimension. When the waveguide hosts interacting photons, it becomes a platform to explore many-body quantum optics. However, the influence of photonic correlations on emitter dynamics remains poorly understood. In this work, we study the collective decay and coherent interactions of quantum emitters coupled to a one-dimensional Bose-Hubbard waveguide, an array of coupled photonic modes with repulsive on-site interactions that supports superfluid and Mott insulating phases. We show that photon-photon interactions alone can trigger a superradiant burst, independent of emitter spacing and transition frequency. In the off-resonant regime, emitters exhibit two distinct types of mediated interactions: delocalized superfluid excitations yield distance-independent couplings, while Mott-insulator quasiparticles generate short-range interactions mediated by doublons and holons. Our work bridges many-body physics and waveguide QED, revealing how photonic many-body states shape emitter dynamics.
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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Atom-Photon Bound States in Fractal Photonic Lattices: Localization Length and Anomalous Diffusion
Atom-photon bound states in fractal photonic lattices exhibit localization length ξ ∼ Δ^{-1/d_w} governed by anomalous diffusion on the fractal.
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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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