Publication | Open Access
Exotic pairing states in a Fermi gas with three-dimensional spin-orbit coupling
31
Citations
43
References
2013
Year
Quantum LiquidEngineeringMany-body Quantum PhysicTopological Quantum StateThree-dimensional Spin-orbit CouplingQuantum MaterialsUltracold AtomExotic StateQuantum ScienceSpin-orbit EffectsPhysicsQuantum Field TheoryTopological PhaseQuantum MagnetismSpintronicsNatural SciencesCondensed Matter PhysicsApplied PhysicsFflo StatesNodal Superfluid StatesFermi GasThree-dimensional Fermi Gas
We investigate properties of exotic pairing states in a three-dimensional Fermi gas with three-dimensional spin-orbit coupling and an effective Zeeman field. The interplay of spin-orbit coupling, effective Zeeman field, and pairing can lead to first-order phase transitions between different phases, and to interesting nodal superfluid states with gapless surfaces in the momentum space. We then demonstrate that pairing states with zero center-of-mass momentum are unstable against Fulde-Ferrell-Larkin-Ovchinnikov (FFLO) states, with a finite center-of-mass momentum opposite to the direction of the effective Zeeman field. Unlike conventional FFLO states, these FFLO states are induced by the coexistence of spin-orbit coupling and Fermi surface deformation, and have intriguing features like first-order transitions between different FFLO states, nodal FFLO states with gapless surfaces in momentum space, and exotic fully gapped FFLO states. With the recent theoretical proposals for realizing three-dimensional spin-orbit coupling in ultracold atomic gases, our work is helpful for future experimental studies and provides valuable information for the general understanding of pairing physics in spin-orbit-coupled fermionic systems.
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