Swinburne
Browse

Two-band description of resonant superfluidity in atomic Fermi gases

Download (338.61 kB)
journal contribution
posted on 2024-07-11, 06:37 authored by Lianyi He, Hui HuHui Hu, Xiaji LiuXiaji Liu
Fermionic superfluidity in atomic Fermi gases across a Feshbach resonance is normally described by the atom-molecule theory, which treats the closed channel as a noninteracting point boson. In this work we present a theoretical description of the resonant superfluidity in analogy to the two-band superconductors. We employ the underlying two-channel scattering model of Feshbach resonance where the closed channel is treated as a composite boson with binding energy ɛ 0 and the resonance is triggered by the microscopic interchannel coupling U 12 . The binding energy ɛ 0 naturally serves as an energy scale of the system, which has been sent to infinity in the atom-molecule theory. We show that the atom-molecule theory can be viewed as a leading-order low-energy effective theory of the underlying fermionic theory in the limit ɛ 0 →∞ and U 12 →0 , while keeping the phenomenological atom-molecule coupling finite. The resulting two-band description of the superfluid state is in analogy to the BCS theory of two-band superconductors. In the dilute limit ɛ 0 →∞ , the two-band description recovers precisely the atom-molecule theory. The two-band theory provides a natural approach to study the corrections because of a finite binding energy ɛ 0 in realistic experimental systems. For broad and moderate resonances, the correction is not important for current experimental densities. However, for extremely narrow resonance, we find that the correction becomes significant. The finite binding energy correction could be important for the stability of homogeneous polarized superfluid against phase separation in imbalanced Fermi gases across a narrow Feshbach resonance.

Funding

ARC | FT140100003

ARC | FT130100815

ARC | DP140103231

ARC | DP140100637

Spin-orbit coupled quantum gases: understanding new generation materials with topological order : Australian Research Council (ARC) | DP140103231

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

Strongly repulsive ultracold atomic gases as a resource for quantum simulation : Australian Research Council (ARC) | DP140100637

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

History

Available versions

PDF (Published version)

ISSN

1050-2947

Journal title

Phys. Rev. A

Volume

91

Issue

2

Article number

article no. 023622

Pagination

023622-

Publisher

American Physical Society

Copyright statement

Copyright © 2015 American Physical Society. The published version is reproduced in accordance with the copyright policy of the publisher.

Language

eng

Usage metrics

    Publications

    Categories

    Keywords

    Exports

    RefWorks
    BibTeX
    Ref. manager
    Endnote
    DataCite
    NLM
    DC