A review of Floquet topological insulators, covering drive-engineered band topology, anomalous edge states with trivial bulk Chern numbers, and the prethermal, MBL, and bath-engineering routes to stable driven phases.
Prethermal time crystals in a one-dimensional periodically driven Floquet system
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abstract
Motivated by experimental observations of time-symmetry breaking behavior in a periodically driven (Floquet) system, we study a one-dimensional spin model to explore the stability of such Floquet discrete time crystals (DTCs) under the interplay between interaction and the microwave driving. For intermediate interactions and high drivings, from the time evolution of both stroboscopic spin polarization and mutual information between two ends, we show that Floquet DTCs can exist in a prethermal time regime without the tuning of strong disorder. For much weak interactions the system is a symmetry-unbroken phase, while for strong interactions it gives its way to a thermal phase. Through analyzing the entanglement dynamics, we show that large driving fields protect the prethermal DTCs from many-body localization and thermalization. Our results suggest that by increasing the spin interaction, one can drive the experimental system into optimal regime for observing a robust prethermal DTC phase.
fields
cond-mat.mes-hall 1years
2019 1verdicts
UNVERDICTED 1representative citing papers
citing papers explorer
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Floquet topological insulators: from band structure engineering to novel non-equilibrium quantum phenomena
A review of Floquet topological insulators, covering drive-engineered band topology, anomalous edge states with trivial bulk Chern numbers, and the prethermal, MBL, and bath-engineering routes to stable driven phases.