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Theory of ultracold atomic Fermi gases

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TLDR
In this article, the physics of quantum degenerate atomic Fermi gases in uniform as well as in harmonically trapped configurations is reviewed from a theoretical perspective, focusing on the effect of interactions that bring the gas into a superfluid phase at low temperature.
Abstract
The physics of quantum degenerate atomic Fermi gases in uniform as well as in harmonically trapped configurations is reviewed from a theoretical perspective. Emphasis is given to the effect of interactions that play a crucial role, bringing the gas into a superfluid phase at low temperature. In these dilute systems, interactions are characterized by a single parameter, the $s$-wave scattering length, whose value can be tuned using an external magnetic field near a broad Feshbach resonance. The BCS limit of ordinary Fermi superfluidity, the Bose-Einstein condensation (BEC) of dimers, and the unitary limit of large scattering length are important regimes exhibited by interacting Fermi gases. In particular, the BEC and the unitary regimes are characterized by a high value of the superfluid critical temperature, on the order of the Fermi temperature. Different physical properties are discussed, including the density profiles and the energy of the ground-state configurations, the momentum distribution, the fraction of condensed pairs, collective oscillations and pair-breaking effects, the expansion of the gas, the main thermodynamic properties, the behavior in the presence of optical lattices, and the signatures of superfluidity, such as the existence of quantized vortices, the quenching of the moment of inertia, and the consequences of spin polarization. Various theoretical approaches are considered, ranging from the mean-field description of the BCS-BEC crossover to nonperturbative methods based on quantum Monte Carlo techniques. A major goal of the review is to compare theoretical predictions with available experimental results.

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References
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Journal Article

Mixtures of Ultracold Fermions with Unequal Masses

TL;DR: In this paper, the phase diagram of superfluidity for two-species fermion mixtures from the Bardeen-Cooper-Schrieffer (BCS) to Bose-Einstein condensation (BEC) limit as a function of scattering parameter, population imbalance, and mass anisotropy was analyzed.
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Pair Correlations of an Expanding Superfluid Fermi Gas

TL;DR: A local equilibrium ansatz is proposed for the pair correlation function which it is predicted will remain isotropic during the expansion even if the trapping potential is anisotropic, in contrast with the behavior of the density.
Journal ArticleDOI

Superfluid-insulator transition of strongly interacting fermi gases in optical lattices.

TL;DR: A quantum phase transition between fermion superfluid (SF) and band insulator (BI) of fermions in optical lattices is studied and the global phase diagram for SF-insulator transition for the BCS-BEC family is presented.
Journal ArticleDOI

Ground-state description of a single vortex in an atomic Fermi gas: From BCS to Bose Einstein condensation

TL;DR: In this article, the behavior of a vortex as the system crosses from BCS to BEC is discussed, and the energy and spatial structure of the vortex is analyzed. But the authors focus on the BCS-BEC crossover and do not consider the noncondensed pairs, which are not present in the BdG theory.
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