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arxiv: 2505.13401 · v3 · pith:7TEGMJKCnew · submitted 2025-05-19 · 🪐 quant-ph · physics.atom-ph

Unraveling superradiance: Entanglement and mutual information in collective decay

classification 🪐 quant-ph physics.atom-ph
keywords decayentanglementstatesapproachburstclassicalcollectiveemitters
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We study the collective decay of an initially inverted ensemble of two-level emitters in two distinct scenarios: when coupled to a squeezed photonic reservoir and when interacting with a one-dimensional waveguide. Using a quantum-state diffusion approach to unravel the emission process, we investigate entanglement and classical correlations along individual quantum trajectories over time. This numerical analysis shows that despite an initial build-up of entanglement and a significant amount of entanglement due to either spin squeezing or dark states at late times, the essential features of the superradiant burst are well described by averages over fully factorizable states. We explain this observation in terms of an almost complete factorization of all 2-local observables, which we identify as a generic property of superradiant decay. Based on this insight, we provide a purely classical theory for the burst in squeezed superradiance, which is both intuitive and exact for a large number of emitters. Moreover, we find that our numerical approach also performs well in the presence of subradiant states, which dominate the slow residual decay of non-uniform ensembles at late times.

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Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score.

  1. Extensive mixed-state entanglement in kinetically constrained superradiance

    quant-ph 2026-05 unverdicted novelty 7.0

    Local Boolean kinetic constraints added to Dicke superradiance generate extensive mixed-state entanglement and a hierarchy of long-range entangled singlet dark states while retaining superradiant N^2 scaling.