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Generating Giant Vortex in a Fermi Superfluid via Spin-Orbital-Angular-Momentum Coupling

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arxiv 2006.08898 v2 pith:24AOUG4P submitted 2020-06-16 cond-mat.quant-gas nucl-thquant-ph

Generating Giant Vortex in a Fermi Superfluid via Spin-Orbital-Angular-Momentum Coupling

classification cond-mat.quant-gas nucl-thquant-ph
keywords fermicouplingsoamsuperfluidsvortexvorticesangulargenerating
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Spin-orbital-angular-momentum (SOAM) coupling has been realized in recent experiments of Bose-Einstein condensates [Chen et al., Phys. Rev. Lett. 121, 113204 (2018) and Zhang et al., Phys. Rev. Lett. 122, 110402 (2019)], where the orbital angular momentum imprinted upon bosons leads to quantized vortices. For fermions, such an exotic synthetic gauge field can provide fertile ground for fascinating pairing schemes and rich superfluid phases, which are yet to be explored. Here we demonstrate how SOAM coupling stabilizes vortices in Fermi superfluids through a unique mechanism that can be viewed as the angular analog to that of the spin-orbit-coupling-induced Fulde-Ferrell state under a Fermi surface deformation. Remarkably, the vortex size is comparable with the beam waist of Raman lasers generating the SOAM coupling, which is typically much larger than previously observed vortices in Fermi superfluids. With tunable size and core structure, these giant vortex states provide unprecedented experimental access to topological defects in Fermi superfluids.

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