1D Three-state mean-field Potts model with first- and second-order phase transitions
Abstract
We analyze a three-state Potts model built over a lattice ring, with coupling , and the fully connected graph, with coupling . This model is effectively mean-field and can be exactly solved by using transfer-matrix method and Cardano formula. When and are both ferromagnetic, the model has a first-order phase transition which turns out to be a smooth modification of the known phase transition of the traditional mean-field Potts model (), despite, as we prove, the connected correlation functions are now non zero, even in the paramagnetic phase. Furthermore, besides the first-order transition, there exists also a hidden continuous transition at a temperature below which the symmetric metastable state ceases to exist. When is ferromagnetic and antiferromagnetic, a similar antiferromagnetic counterpart phase transition scenario applies. Quite interestingly, differently from the Ising-like two-state case, for large values of the antiferromagnetic coupling , the critical temperature of the system tends to a finite value.
Cite
@article{arxiv.1205.6777,
title = {1D Three-state mean-field Potts model with first- and second-order phase transitions},
author = {Massimo Ostilli and Farrukh Mukhamedov},
journal= {arXiv preprint arXiv:1205.6777},
year = {2020}
}
Comments
8 pages, 6 figures; preprint conform to the published version