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Dynamic generation of superflow in a fermionic ring through phase imprinting

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arxiv 2406.00289 v2 pith:554TVLWK submitted 2024-06-01 cond-mat.quant-gas cond-mat.supr-conquant-ph

Dynamic generation of superflow in a fermionic ring through phase imprinting

classification cond-mat.quant-gas cond-mat.supr-conquant-ph
keywords currentimprintingphasedynamicquantizedsuperflowazimuthalcondensate
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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We study the dynamic generation of persistent current by phase imprinting fermionic atoms in a ring geometry. Mediated by the pairing interaction, the Fermi condensate dynamically acquires a quantized current by developing azimuthal phase slips, as well as density and pairing-order-parameter depletions. Resorting to the Bogolioubov-de Gennes formalism, we investigate the time evolution of the transferred total angular momentum and the quantized superfluid current throughout the phase-imprinting process. This enables a detailed analysis of the impact of interaction, as well as different initial pairing states, on the superflow formation. In particular, we show that, as the condensate is tuned toward the Bose-Einstein-condensate side of the Feshbach resonance, the azimuthal density distribution becomes less susceptible to the phase imprinting potential, leading to smaller quantized current under the same imprinting parameters. Our results offer microscopic insights into the dynamic development of superflow in the phase-imprinting process, and are helpful for the ongoing experimental effort.

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