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Realizing Fulde-Ferrell Superfluids via a Dark-State Control of Feshbach Resonances

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posted on 2024-07-11, 09:30 authored by Lianyi He, Hui HuHui Hu, Xiaji LiuXiaji Liu
We propose that the long-sought Fulde-Ferrell superfluidity with nonzero momentum pairing can be realized in ultracold two-component Fermi gases of K40 or Li6 atoms by optically tuning their magnetic Feshbach resonances via the creation of a closed-channel dark state with a Doppler-shifted Stark effect. In this scheme, two counterpropagating optical fields are applied to couple two molecular states in the closed channel to an excited molecular state, leading to a significant violation of Galilean invariance in the dark-state regime and hence to the possibility of Fulde-Ferrell superfluidity. We develop a field theoretical formulation for both two-body and many-body problems and predict that the Fulde-Ferrell state has remarkable properties, such as anisotropic single-particle dispersion relation, suppressed superfluid density at zero temperature, anisotropic sound velocity, and rotonic collective mode. The latter two features can be experimentally probed using Bragg spectroscopy, providing a smoking-gun proof of Fulde-Ferrell superfluidity.

Funding

ARC | FT140100003

ARC | FT130100815

Imbalanced superfluidity with cold atoms: a new way to understand unconventional superconductors and stellar superfluids : Australian Research Council (ARC) | FT130100815

Finding the lost particle: Majorana fermions in ultracold atoms : Australian Research Council (ARC) | FT140100003

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ISSN

1079-7114

Journal title

Physical Review Letters

Volume

120

Issue

4

Article number

article no. 045302

Pagination

045302-

Publisher

American Physical Society

Copyright statement

Copyright © 2018 American Physical Society. The published version is reproduced in accordance with the copyright policy of the publisher.

Language

eng

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