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Quantum Dissipative Continuous Time Crystals

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arxiv 2503.16141 v3 pith:XK2AUUXU submitted 2025-03-20 quant-ph

Quantum Dissipative Continuous Time Crystals

classification quant-ph
keywords continuousphasescrystalsdissipativedynamicsinteractingquantumsymmetry
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Continuous time crystals, i.e., nonequilibrium phases with a spontaneously broken continuous time-translational symmetry, have been studied and recently observed in the long-time dynamics of open quantum systems. Here, we investigate a lattice of interacting three-level particles and find two distinct time-crystal phases that cannot be described within mean-field theory. Remarkably, one of them emerges only in the presence of correlations, upon accounting for beyond-mean-field effects. Our findings extend explorations of continuous time-translational symmetry breaking in dissipative systems beyond the classical phenomenology of periodic orbits in a low-dimensional nonlinear system. The proposed model applies directly to the laser-driven dynamics of interacting Rydberg states in neutral atom arrays and suggests that the predicted time-crystal phases are observable in such experiments.

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Cited by 1 Pith paper

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    quant-ph 2026-07 conditional novelty 2.0

    Quantum synchronization — rhythm-locking in open quantum systems — has matured into an experimentally demonstrated field spanning few-body oscillators, many-body phases, and time crystals, as documented in this compre...