First order phase transitions in classical lattice gas spin models
Abstract
The present paper considers some classical ferromagnetic lattice--gas models, consisting of particles that carry --component spins () and associated with a --dimensional lattice (); each site can host one particle at most, thus implicitly allowing for hard--core repulsion; the pair interaction, restricted to nearest neighbors, is ferromagnetic, and site occupation is also controlled by the chemical potential . The models had previously been investigated by Mean Field and Two--Site Cluster treatments (when D=3), as well as Grand--Canonical Monte Carlo simulation in the case , for both D=2 and D=3; the obtained results showed the same kind of critical behaviour as the one known for their saturated lattice counterparts, corresponding to one particle per site. Here we addressed by Grand--Canonical Monte Carlo simulation the case where the chemical potential is negative and sufficiently large in magnitude; the value was chosen for each of the four previously investigated counterparts, together with in an additional instance. We mostly found evidence of first order transitions, both for D=2 and D=3, and quantitatively characterized their behaviour. Comparisons are also made with recent experimental results.
Cite
@article{arxiv.0705.2116,
title = {First order phase transitions in classical lattice gas spin models},
author = {H Chamati and S Romano},
journal= {arXiv preprint arXiv:0705.2116},
year = {2007}
}