Isothermal compressibility and effects of multi-body molecular interactions in a strongly interacting ultracold Fermi gas
Abstract
We theoretically investigate the isothermal compressibility in the normal state of an ultracold Fermi gas. Including pairing fluctuations, as well as preformed-pair formations, within the framework of the self-consistent -matrix approximation (SCTMA), we evaluate the temperature dependence of this thermodynamic quantity over the entire BCS (Bardeen-Cooper-Schrieffer)-BEC (Bose-Einstein condensation) crossover region. While in the weak-coupling BCS regime is dominated by Fermi atoms near the Fermi surface, correlations between tightly bound Cooper-pair molecules are found to play crucial roles in the strong-coupling BEC regime. In the latter region, besides a two-body molecular interaction, a three-body one is shown to sizably affect near the superfluid phase transition temperature. Our results indicate that the strong-coupling BEC regime of an ultracold Fermi gas would provide a unique opportunity to study multi-body correlations between Cooper-pair molecules.
Keywords
Cite
@article{arxiv.2206.02406,
title = {Isothermal compressibility and effects of multi-body molecular interactions in a strongly interacting ultracold Fermi gas},
author = {Daichi Kagamihara and Ryohei Sato and Koki Manabe and Hiroyuki Tajima and Yoji Ohashi},
journal= {arXiv preprint arXiv:2206.02406},
year = {2022}
}
Comments
30 pages, 13 figures