Pairing fluctuations and the superfluid density through the BCS-BEC crossover
arXiv:cond-mat/0609187 · doi:10.1103/PhysRevA.74.063626
Abstract
We derive an expression for the superfluid density of a uniform two-component Fermi gas through the BCS-BEC crossover in terms of the thermodynamic potential in the presence of an imposed superfluid flow. Treating the pairing fluctuations in a Gaussian approximation following the approach of Nozières and Schmitt-Rink, we use this definition of $Ï_s$ to obtain an explicit result which is valid at finite temperatures and over the full BCS-BEC crossover. It is crucial that the BCS gap $Î$, the chemical potential $μ$, and $Ï_s$ all include the effect of fluctuations at the same level in a self-consistent manner. We show that the normal fluid density $Ï_n \equiv n - Ï_s$ naturally separates into a sum of contributions from Fermi BCS quasiparticles ($Ï^F_{n}$) and Bose collective modes ($Ï^B_{n}$). The expression for $Ï^F_{n}$ is just Landau's formula for a BCS Fermi superfluid but now calculated over the BCS-BEC crossover. The expression for the Bose contribution $Ï^B_{n}$ is more complicated and only reduces to Landau's formula for a Bose superfluid in the extreme BEC limit, where all the fermions have formed stable Bose pairs and the Bogoliubov excitations of the associated molecular Bose condensate are undamped. In a companion paper, we present numerical calculations of $Ï_s$ using an expression equivalent to the one derived in this paper, over the BCS-BEC crossover, including unitarity, and at finite temperatures.
30 pages