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Reduced quantum anomaly in a quasi-two-dimensional fermi superfluid: significance of the confinement-induced effective range of interactions

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posted on 2024-07-26, 14:49 authored by Hui HuHui Hu, Brendan Mulkerin, Umberto Toniolo, Lianyi He, Xiaji LiuXiaji Liu
A two-dimensional (2D) harmonically trapped interacting Fermi gas is anticipated to exhibit a quantum anomaly and possesses a breathing mode at frequencies different from a classical scale-invariant value ωB=2ω⊥, where ω⊥ is the trapping frequency. The predicted maximum quantum anomaly (∼10%) has not been confirmed in experiments. Here, we theoretically investigate the zero-temperature density equation of state and the breathing mode frequency of an interacting Fermi superfluid at the dimensional crossover from three to two dimensions. We find that the simple model of a 2D Fermi gas with a single s-wave scattering length is not adequate to describe the experiments in the 2D limit, as commonly believed. A more complete description of quasi-2D leads to a much weaker quantum anomaly, consistent with the experimental observations. We clarify that the reduced quantum anomaly is due to the significant confinement-induced effective range of interactions.

Funding

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History

Available versions

PDF (Published version)

ISSN

1079-7114

Journal title

Physical Review Letters

Volume

122

Issue

7

Article number

article no. 070401

Pagination

070401-

Publisher

American Physical Society

Copyright statement

Copyright © 2019 American Physical Society. The published version is reproduced in accordance with the copyright policy of the publisher.

Language

eng

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