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Observation of discrete time-crystalline order in a disordered dipolar many-body system

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arxiv 1610.08057 v1 pith:IJH4LKXU submitted 2016-10-25 quant-ph cond-mat.dis-nncond-mat.mes-hallcond-mat.str-elphysics.atom-ph

classification quant-phcond-mat.dis-nncond-mat.mes-hallcond-mat.str-elphysics.atom-ph
keywords orderdiscretedisorderedmany-bodyphasessystemstime-crystallinedipolar
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abstract

Understanding quantum dynamics away from equilibrium is an outstanding challenge in the modern physical sciences. It is well known that out-of-equilibrium systems can display a rich array of phenomena, ranging from self-organized synchronization to dynamical phase transitions. More recently, advances in the controlled manipulation of isolated many-body systems have enabled detailed studies of non-equilibrium phases in strongly interacting quantum matter. As a particularly striking example, the interplay of periodic driving, disorder, and strong interactions has recently been predicted to result in exotic "time-crystalline" phases, which spontaneously break the discrete time-translation symmetry of the underlying drive. Here, we report the experimental observation of such discrete time-crystalline order in a driven, disordered ensemble of $\sim 10^6$ dipolar spin impurities in diamond at room-temperature. We observe long-lived temporal correlations at integer multiples of the fundamental driving period, experimentally identify the phase boundary and find that the temporal order is protected by strong interactions; this order is remarkably stable against perturbations, even in the presence of slow thermalization. Our work opens the door to exploring dynamical phases of matter and controlling interacting, disordered many-body systems.

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Cited by 4 Pith papers

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  1. Prethermalization without temperature

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    An emergent approximate conservation of magnetization creates a long-lived prethermal time-crystal regime at infinite temperature, and tuning the drive field can exponentially extend the NMR time-crystal signal.

  2. Long-Range Prethermal Phases of Nonequilibrium Matter

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    The paper proves, with one explicit assumption in the intermediate regime, that prethermal Floquet phases exist for power-law interacting systems with exponent alpha > d, and predicts a disorder-free one-dimensional p...

  3. Streamlined Krylov construction and classification of ergodic Floquet systems

    quant-ph 2024-12 conditional novelty 7.0 of 10

    A Szegő/CMV Krylov construction maps Floquet unitary dynamics to a five-diagonal chain, with a conjectured classification of chaos and integrability by Verblunsky coefficient asymptotics.

  4. An Introduction to Spontaneous Symmetry Breaking

    hep-th 2019-09 accept novelty 1.0 of 10

    A comprehensive review that frames spontaneous symmetry breaking through singular limits and stable broken-symmetry states, suitable for graduate teaching.

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