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Nonperturbative decay of bipartite discrete time crystals

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arxiv 2411.00651 v2 pith:5MNLIRDM submitted 2024-11-01 quant-ph

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keywords bipartitetimediscreteorderprethermalquantumtime-crystallinecrystal
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We study prethermal time-crystalline order in periodically driven quantum Ising models on disorder-free decorated lattices. Using a tensor network ansatz for the state which reflects the geometry of a unit cell of the lattice, we show through finite entanglement scaling that the system has an exponentially long-lived subharmonic response in the thermodynamic limit, which decays nonperturbatively in deviations from a perfect periodic drive. The resulting prethermal discrete time crystal is not only stable to imperfections in the transverse field, but also exhibits a bipartite rigidity to generic perturbations in the longitudinal field. We call this state a bipartite discrete time crystal and reveal a rich prethermal phase diagram, including multiple regions of bipartite time-crystalline order, uniform time-crystalline order and thermalization, with boundaries depending delicately on the topology of the decorated lattice. Our results thus uncover a variety of time crystals which may be realized on current digital quantum processors and analog quantum simulators.

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Cited by 1 Pith paper

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

  1. Realization of Two-dimensional Discrete Time Crystals with Anisotropic Heisenberg Coupling

    quant-ph 2025-01 conditional novelty 6.0 of 10

    A two-dimensional disordered Heisenberg spin system under periodic kicks shows a discrete time crystal phase in both hardware runs and tensor network simulations.

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