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arxiv: 1708.00865 · v2 · pith:OSEZS2OSnew · submitted 2017-08-02 · ❄️ cond-mat.dis-nn · cond-mat.quant-gas· cond-mat.stat-mech· cond-mat.str-el

Logarithmically Slow Relaxation in Quasi-Periodically Driven Random Spin Chains

classification ❄️ cond-mat.dis-nn cond-mat.quant-gascond-mat.stat-mechcond-mat.str-el
keywords driverelaxationslowdistinctdynamicsexponentiallyglassylogarithmically
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We simulate the dynamics of a disordered interacting spin chain subject to a quasi-periodic time-dependent drive, corresponding to a stroboscopic Fibonacci sequence of two distinct Hamiltonians. Exploiting the recursive drive structure, we can efficiently simulate exponentially long times. After an initial transient, the system exhibits a long-lived glassy regime characterized by a logarithmically slow growth of entanglement and decay of correlations analogous to the dynamics at the many-body delocalization transition. Ultimately, at long time-scales, which diverge exponentially for weak or rapid drives, the system thermalizes to infinite temperature. The slow relaxation enables metastable dynamical phases, exemplified by a "time quasi-crystal" in which spins exhibit persistent oscillations with a distinct quasi-periodic pattern from that of the drive. We show that in contrast with Floquet systems, a high-frequency expansion strictly breaks down above fourth order, and fails to produce an effective static Hamiltonian that would capture the pre-thermal glassy relaxation.

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