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Spin-orbit coupled ultracold gases in optical lattices: High-band physics and insufficiency of tight-binding models

机译:晶格中的自旋轨道耦合超冷气体:高频带物理和紧束缚模型的不足

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摘要

We study the interplay effect of spin-orbit coupling (SOC) and an optical lattice on the single-particle physics and superfluid-insulator transition in ultracold Fermi gases. We consider the type of SOC that has been realized in cold atom experiments via two-photon Raman processes. Our analyses are based on the knowledge of a full single-particle spectrum in lattices without relying on any tight-binding approximation. We evaluate existing tight-binding models and point out their limitations in predicting the correct single-particle physics due to the missed high-band contributions. Moreover, we show that the Raman field (creating SOC) can induce band-gap closing in a two-dimensional optical lattice, leading to the intriguing phenomenon of superfluidity reentrance for interacting fermions at integer filling. We present the superfluid-insulator phase diagram in a wide parameter regime of chemical potentials and Raman fields. All these results are far beyond any that a tight-binding model can predict and can be directly probed in current cold atoms experiments.
机译:我们研究了自冷轨道耦合(SOC)和光学晶格对超冷费米气体中单粒子物理和超流体-绝缘体跃迁的相互作用。我们考虑通过双光子拉曼过程在冷原子实验中实现的SOC类型。我们的分析基于对晶格中完整的单粒子光谱的了解,而无需依赖任何紧密绑定的近似值。我们评估了现有的紧密绑定模型,并指出了由于缺少高频带贡献而在预测正确的单粒子物理方面的局限性。此外,我们表明拉曼场(创建SOC)可以在二维光学晶格中引起带隙闭合,从而导致在整数填充时相互作用的费米子产生了超流动折返的有趣现象。我们在化学势和拉曼场的宽参数范围内提出了超流体-绝缘子相图。所有这些结果都远远超出紧密结合模型可以预测的结果,并且可以在当前的冷原子实验中直接进行探测。

著录项

  • 来源
    《Physical review》 |2015年第14期|140502.1-140502.5|共5页
  • 作者

    Lihong Zhou; Xiaoling Cui;

  • 作者单位

    Beijing National Laboratory for Condensed Matter Physics, Institute of Physics, Chinese Academy of Sciences, Beijing, 100190, People's Republic of China;

    Beijing National Laboratory for Condensed Matter Physics, Institute of Physics, Chinese Academy of Sciences, Beijing, 100190, People's Republic of China;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    degenerate fermi gases; fermion systems and electron gas; BCS theory and its development;

    机译:简并的费米气体费米子系统和电子气BCS理论及其发展;

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