English

Improved Quantum Hard-Sphere Ground-State Equations of State

Statistical Mechanics 2009-11-13 v2 Soft Condensed Matter

Abstract

The London ground-state energy formula as a function of number density for a system of identical boson hard spheres, corrected for the reduced mass of a pair of particles in a sphere-of-influence picture, and generalized to fermion hard-sphere systems with two and four intrinsic degrees of freedom, has a double-pole at the ultimate \textit{regular} (or periodic, e.g., face-centered-cubic) close-packing density usually associated with a crystalline branch. Improved fluid branches are contructed based upon exact, field-theoretic perturbation-theory low-density expansions for many-boson and many-fermion systems, appropriately extrapolated to intermediate densities, but whose ultimate density is irregular or \textit{random} closest close-packing as suggested in studies of a classical system of hard spheres. Results show substantially improved agreement with the best available Green-function Monte Carlo and diffusion Monte Carlo simulations for bosons, as well as with ladder, variational Fermi hypernetted chain, and so-called L-expansion data for two-component fermions.

Keywords

Cite

@article{arxiv.0705.1191,
  title  = {Improved Quantum Hard-Sphere Ground-State Equations of State},
  author = {M. A. Solís and M. de Llano and J. W. Clark and George A. Baker},
  journal= {arXiv preprint arXiv:0705.1191},
  year   = {2009}
}
R2 v1 2026-06-21T08:26:22.149Z