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- W1566248811 abstract "We show that the recently developed optical lattices with Peierls substitution---which can be modeled as a lattice with a complex tunneling coefficient---may be used to induce controllable quantum transport of ultracold atoms. In particular, we show that by ramping up the phase of the complex tunneling coefficient in a spatially uniform fashion, a finite quasi-steady-state current (QSSC) ensues from the exact dynamics of noninteracting fermions. The direction and magnitude of the current can be controlled by the overall phase difference but not the details of the ramp. The entanglement entropy does not increase when the QSSC lasts. Due to different spin statistics, condensed noninteracting bosons do not support a finite QSSC under the same setup. We also find that an approximate form of the QSSC survives when perturbative effects from interactions, weak harmonic background traps, and finite temperature are present, which suggests that our findings should be observable with available experimental capabilities." @default.
- W1566248811 created "2016-06-24" @default.
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- W1566248811 date "2013-02-08" @default.
- W1566248811 modified "2023-09-26" @default.
- W1566248811 title "Controlling transport of ultracold atoms in one-dimensional optical lattices with artificial gauge fields" @default.
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- W1566248811 doi "https://doi.org/10.1103/physreva.87.023609" @default.
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