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具有自旋轨道耦合的简并量子气体:综述。

Degenerate quantum gases with spin-orbit coupling: a review.

机构信息

Institute for Advanced Study, Tsinghua University, Beijing 100084, People's Republic of China.

出版信息

Rep Prog Phys. 2015 Feb;78(2):026001. doi: 10.1088/0034-4885/78/2/026001. Epub 2015 Feb 2.

Abstract

This review focuses on recent developments in synthetic spin-orbit (SO) coupling in ultracold atomic gases. Two types of SO coupling are discussed. One is Raman process induced coupling between spin and motion along one of the spatial directions and the other is Rashba SO coupling. We emphasize their common features in both single-particle and two-body physics and the consequences of both in many-body physics. For instance, single particle ground state degeneracy leads to novel features of superfluidity and a richer phase diagram; increased low-energy density-of-state enhances interaction effects; the absence of Galilean invariance and spin-momentum locking gives rise to intriguing behaviours of superfluid critical velocity and novel quantum dynamics; and the mixing of two-body singlet and triplet states yields a novel fermion pairing structure and topological superfluids. With these examples, we show that investigating SO coupling in cold atom systems can, enrich our understanding of basic phenomena such as superfluidity, provide a good platform for simulating condensed matter states such as topological superfluids and more importantly, result in novel quantum systems such as SO coupled unitary Fermi gas and high spin quantum gases. Finally we also point out major challenges and some possible future directions.

摘要

这篇综述聚焦于超冷原子气体中最近在合成自旋轨道(SO)耦合方面的进展。讨论了两种类型的 SO 耦合。一种是沿空间方向之一诱导自旋和运动之间的拉曼过程耦合,另一种是 Rashba SO 耦合。我们强调了它们在单粒子和双体物理中的共同特征,以及它们在多体物理中的后果。例如,单粒子基态简并导致超流的新特征和更丰富的相图;增加的低能态密度增强了相互作用效应;不存在伽利略不变性和自旋-动量锁定导致超流临界速度和新颖量子动力学的有趣行为;以及双体 singlet 和 triplet 态的混合产生了新颖的费米配对结构和拓扑超流。通过这些例子,我们表明研究冷原子系统中的 SO 耦合可以丰富我们对超流等基本现象的理解,为模拟拓扑超流等凝聚态物质状态提供良好的平台,更重要的是,产生新型量子系统,如 SO 耦合的幺正费米气体和高自旋量子气体。最后,我们还指出了主要的挑战和一些可能的未来方向。

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