Re-orientation Transition in Molecular Thin Films: Potts Model with Dipolar Interaction
Abstract
We study the low-temperature behavior and the phase transition of a thin film by Monte Carlo simulation. The thin film has a simple cubic lattice structure where each site is occupied by a Potts parameter which indicates the molecular orientation of the site. We take only three molecular orientations in this paper which correspond to the 3-state Potts model. The Hamiltonian of the system includes: (i) the exchange interaction between nearest-neighbor sites and (ii) the long-range dipolar interaction of amplitude truncated at a cutoff distance (iii) a single-ion perpendicular anisotropy of amplitude . We allow between surface spins, and otherwise. We show that the ground state depends on the the ratio and . For a single layer, for a given , there is a critical value below (above) which the ground-state (GS) configuration of molecular axes is perpendicular (parallel) to the film surface. When the temperature is increased, a re-orientation transition occurs near : the low- in-plane ordering undergoes a transition to the perpendicular ordering at a finite , below the transition to the paramagnetic phase. The same phenomenon is observed in the case of a film with a thickness. We show that the surface phase transition can occur below or above the bulk transition depending on the ratio . Surface and bulk order parameters as well as other physical quantities are shown and discussed.
Cite
@article{arxiv.1209.0114,
title = {Re-orientation Transition in Molecular Thin Films: Potts Model with Dipolar Interaction},
author = {Danh-Tai Hoang and Maciej Kasperski and Henryk Puszkarski and H. T. Diep},
journal= {arXiv preprint arXiv:1209.0114},
year = {2015}
}
Comments
7 pages, 11 figures, submitted for publication