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Topological superfluids on a square optical lattice with non-Abelian gauge fields: Effects of next-nearest-neighbor hopping in the BCS-BEC evolution

机译:具有非阿贝尔规范场的方形光学晶格上的拓扑超流体:BCS-BEC演化中的最近邻跳跃

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摘要

We consider a two-component Fermi gas with attractive interactions on a square optical lattice, and study the interplay of Zeeman field, spin-orbit coupling, and next-nearest-neighbor hopping on the ground-state phase diagrams in the entire BCS-BEC evolution. In particular, we first classify and distinguish all possible superfluid phases by the momentum-space topology of their zero-energy quasiparticle-quasihole excitations, and then numerically establish a plethora of quantum phase transitions in between. These transitions are further signaled and evidenced by the changes in the corresponding topological invariant of the system, i.e., its Chern number. Lastly, we find that the superfluid phase exhibits a reentrant structure, separated by a fingering normal phase, the origin of which is traced back to the changes in the single-particle density of states.
机译:我们考虑在正方形光学晶格上具有有吸引力相互作用的两组分费米气体,并在整个BCS-BEC的基态相图中研究塞曼场,自旋轨道耦合和近邻跳频的相互作用。演化。特别地,我们首先通过零能量准粒子-准空穴激发的动量空间拓扑对所有可能的超流体相进行分类和区分,然后在数值上建立两者之间的过多量子相变。通过系统相应的拓扑不变性(即其Chern数)的变化进一步标志和证明了这些转变。最后,我们发现超流体相显示出折返结构,由指状正相分隔,其起源可追溯到单粒子态密度的变化。

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    Işkın, Menderes;

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  • 年度 2016
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  • 原文格式 PDF
  • 正文语种 English
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