Correlations in the low-density Fermi gas: Fermi-Liquid state, Dimerization, and BCS Pairing
H. H. Fan, E. Krotscheck, T. Lichtenegger, D. Mateo, R. E. Zillich

TL;DR
This paper investigates low-density Fermi gases with attractive interactions, analyzing their ground state energy, instabilities, and superfluid pairing, revealing the importance of many-body effects and finite-range corrections.
Contribution
The study applies an advanced integral equation method to accurately analyze Fermi gases, identifying dimerization instabilities and refining low-density expansion predictions.
Findings
Accurate ground state energies within 1% using Fermi-Hypernetted Chain method.
Identification of a divergence in in-medium scattering length indicating dimerization.
Finite-range and medium corrections significantly influence superfluid pairing properties.
Abstract
We present ground state calculations for low-density Fermi gases described by two model interactions, an attractive square-well potential and a Lennard-Jones potential, of varying strength. We use the optimized Fermi-Hypernetted Chain integral equation method which has been proved to provide, in the density regimes of interest here, an accuracy better than one percent. We first examine the low-density expansion of the energy and compare with the exact answer by Huang and Yang (H. Huang and C. N. Yang, {\em Phys. Rev.\/} {\bf 105}, 767 (1957)). It is shown that a locally correlated wave function of the Jastrow-Feenberg type does not recover the quadratic term in the expansion of the energy in powers of , where is the vacuum -wave scattering length and the Fermi wave number. The problem is cured by adding second-order perturbation corrections in a correlated basis.…
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