Communication: Phase transitions, criticality, and three-phase coexistence in constrained cell models

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Abstract

In simulation studies of fluid-solid transitions, the solid phase is usually modeled as a constrained system in which each particle is confined to move in a single Wigner-Seitz cell. The constrained cell model has been used in the determination of fluid-solid coexistence via thermodynamic integration and other techniques. In the present work, the phase diagram of such a constrained system of Lennard-Jones particles is determined from constant-pressure simulations. The pressure-density isotherms exhibit inflection points which are interpreted as the mechanical stability limit of the solid phase. The phase diagram of the constrained system contains a critical and a triple point. The temperature and pressure at the critical and the triple point are both higher than those of the unconstrained system due to the reduction in the entropy caused by the single occupancy constraint. © 2012 American Institute of Physics.

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Nayhouse, M., Kwon, J. S. I., & Orkoulas, G. (2012). Communication: Phase transitions, criticality, and three-phase coexistence in constrained cell models. Journal of Chemical Physics, 136(20). https://doi.org/10.1063/1.4725768

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