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Quantum correlated steady states under competing collective and individual decay

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arxiv 2404.02134 v2 pith:3J6NXWMG submitted 2024-04-02 quant-ph

Quantum correlated steady states under competing collective and individual decay

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keywords collectivequantumcorrelateddecaydissipationindividualstatescompeting
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Collective dissipation can generate useful quantum correlations, while ubiquitous individual decay destroys them. We study the interplay between these two competing processes considering a driven system of many spins (``atoms") undergoing both collective and individual dissipation (``radiation"). In steady state and depending on drive, we find that the system exhibits a first-order phase transition and quantum bistability: its quantum state is a mixture of two many-body states associated with the two competing decay processes. Accordingly, one of these states closely resembles a correlated ``coherently radiating spin state" (CRSS) -- the solution of purely collective dissipation -- exhibiting spin-squeezing entanglement. We predict dynamical switching between the two stable states, manifest as many-body quantum jumps in the various observables of spin and radiation. Macroscopically, the switching rate tends to vanish and the system can reside in a correlated CRSS for long times. This reveals how correlated dissipative physics emerges at the presence of decorrelating individual decay, opening a path for unlocking collective dissipation phenomena in realistic quantum platforms and applications. We discuss consequences for experiments in collective radiation.

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Cited by 4 Pith papers

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    quant-ph 2026-07 accept novelty 7.0

    Local dephasing and spontaneous emission define scaling variables that continuously tune Dicke peak intensity from N^2 through subquadratic to linear N scaling, with a transient continuous transition at the fully coll...

  2. Fourier imaging of collective spontaneous emission modes in superradiant cold atomic clouds

    physics.atom-ph 2026-07 accept novelty 7.0

    Fourier imaging of an elongated cold 87Rb cloud reveals a ring-shaped emission pattern of the most-superradiant collective jump operator, isolable by spatial filtering to yield the classic N^{2} burst.

  3. Fourier imaging of collective spontaneous emission modes in superradiant cold atomic clouds

    physics.atom-ph 2026-07 accept novelty 7.0

    Fourier imaging isolates a ring-shaped superradiant emission pattern from cold 87Rb clouds that matches the most superradiant collective jump operator, with superlinear intensity scaling after spatial filtering.

  4. Exact metastability in a class of driven-dissipative quantum many-body systems

    quant-ph 2026-06 unverdicted novelty 6.0

    Metastability timescales near first-order transitions in driven-dissipative systems with hidden time-reversal symmetry are analytically predictable via purification of the steady state.