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三维自旋轨道耦合简并费米气体中的 BCS-BEC 交叉和拓扑相变。

BCS-BEC crossover and topological phase transition in 3D spin-orbit coupled degenerate Fermi gases.

机构信息

Department of Physics and Astronomy, Washington State University, Pullman, Washington, 99164, USA.

出版信息

Phys Rev Lett. 2011 Nov 4;107(19):195303. doi: 10.1103/PhysRevLett.107.195303.

Abstract

We investigate the BCS-BEC crossover in three-dimensional degenerate Fermi gases in the presence of spin-orbit coupling (SOC) and Zeeman field. We show that the superfluid order parameter destroyed by a large Zeeman field can be restored by the SOC. With increasing strengths of the Zeeman field, there is a series of topological quantum phase transitions from a nontopological superfluid state with fully gapped fermionic spectrum to a topological superfluid state with four topologically protected Fermi points (i.e., nodes in the quasiparticle excitation gap) and then to a second topological superfluid state with only two Fermi points. The quasiparticle excitations near the Fermi points realize the long-sought low-temperature analog of Weyl fermions of particle physics. We show that the topological phase transitions can be probed using the experimentally realized momentum-resolved photoemission spectroscopy.

摘要

我们研究了存在自旋轨道耦合(SOC)和塞曼场时三维简并费米气体中的 BCS-BEC 交叉。我们表明,大塞曼场破坏的超导序参量可以通过 SOC 恢复。随着塞曼场强度的增加,从具有完全隙费米谱的非拓扑超流态到具有四个拓扑保护费米点(即准粒子激发隙中的节点)的拓扑超流态,再到只有两个费米点的第二种拓扑超流态,存在一系列拓扑量子相变。费米点附近的准粒子激发实现了人们长期以来对粒子物理中 Weyl 费米子的低温模拟。我们表明,可以使用实验实现的动量分辨光发射光谱探测拓扑相变。

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