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Negative differential conductivity and quantum statistical effects in a three-site Bose-Hubbard model

机译:三位Bose-Hubbard模型中的负微分电导率和量子统计效应

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The use of an electron beam to remove ultracold atoms from selected sites in an optical lattice has opened up new opportunities to study transport in quantum systems [R. Labouvie et al., Phys. Rev. Lett. 115, 050601 (2015)]. Inspired by this experimental result, we examine the effects of number difference, dephasing, and initial quantum statistics on the filling of an initially depleted middle well in the three-well inline Bose-Hubbard model. We find that the well-known phenomenon of macroscopic self-trapping is the main contributor to oscillatory negative differential conductivity in our model, with phase diffusion being a secondary effect. However, we find that phase diffusion is required for the production of direct atomic current, with the coherent process showing damped oscillatory currents. We also find that our results are highly dependent on the initial quantum states of the atoms in the system.
机译:使用电子束从光学晶格中选定的位置去除超冷原子,为研究量子系统中的传输提供了新的机会[R. Labouvie等,Phys。牧师115,050601(2015)]。受此实验结果的启发,我们研究了三孔串联Bose-Hubbard模型中数量差异,相移和初始量子统计对最初耗尽的中间孔的填充的影响。我们发现,在我们的模型中,众所周知的宏观自陷现象是导致振荡负微分电导率的主要因素,而相位扩散是次要影响。但是,我们发现产生直流原子电流需要相位扩散,而相干过程显示出衰减的振荡电流。我们还发现,我们的结果高度依赖于系统中原子的初始量子态。

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