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Pre-thermal phases of matter protected by time-translation symmetry

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arxiv 1607.05277 v2 pith:I4EZTAPV submitted 2016-07-18 cond-mat.stat-mech quant-ph

Pre-thermal phases of matter protected by time-translation symmetry

classification cond-mat.stat-mech quant-ph
keywords phasessymmetrypre-thermalsystemstime-translationmatterprotectedregime
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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In a periodically driven (Floquet) system, there is the possibility for new phases of matter, not present in stationary systems, protected by discrete time-translation symmetry. This includes topological phases protected in part by time-translation symmetry, as well as phases distinguished by the spontaneous breaking of this symmetry, dubbed "Floquet time crystals". We show that such phases of matter can exist in the pre-thermal regime of periodically-driven systems, which exists generically for sufficiently large drive frequency, thereby eliminating the need for integrability or strong quenched disorder that limited previous constructions. We prove a theorem that states that such a pre-thermal regime persists until times that are nearly exponentially-long in the ratio of certain couplings to the drive frequency. By similar techniques, we can also construct stationary systems which spontaneously break *continuous* time-translation symmetry. We argue furthermore that for driven systems coupled to a cold bath, the pre-thermal regime could potentially persist to infinite time.

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Cited by 2 Pith papers

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  1. On prethermal time crystals from semi-holography

    hep-th 2025-12 unverdicted novelty 5.0

    Semi-holographic systems with perturbative and holographic sectors exhibit prethermal time crystals through dissipationless modes in hydrodynamic channels plus short-wavelength instabilities that produce inhomogeneiti...

  2. Subsystem Thermalization and Work Statistical Characterizations of Floquet Dynamics

    quant-ph 2026-07 unverdicted novelty 4.0

    In a driven non-integrable Ising chain, subsystem reduced density matrices and work statistics both detect the frequency-dependent crossover from prethermal to infinite-temperature Floquet regimes.