Superfluid transition in a rotating resonantly-interacting Fermi gas
Abstract
We study a rotating atomic Fermi gas near a narrow s-wave Feshbach resonance in a uniaxial harmonic trap with frequencies , . Our primary prediction is the upper-critical angular velocity, , as a function of temperature and resonance detuning , ranging across the BEC-BCS crossover. The rotation-driven suppression of superfluidity at is quite distinct in the BCS and BEC regimes, with the former controlled by Cooper-pair depairing and the latter by the dilution of bosonic molecules. At low and , in the BCS and crossover regimes of , is implicitly given by , vanishing as near (with the BCS gap and resonance width), and extending bulk result to a finite number of atoms in a trap. In the BEC regime of we find , where molecular superfluidity can only be destroyed by large quantum fluctuations associated with comparable boson and vortex densities.
Keywords
Cite
@article{arxiv.cond-mat/0607775,
title = {Superfluid transition in a rotating resonantly-interacting Fermi gas},
author = {Martin Y. Veillette and Daniel E. Sheehy and Leo Radzihovsky and Victor Gurarie},
journal= {arXiv preprint arXiv:cond-mat/0607775},
year = {2007}
}
Comments
4 pages, 3 figures