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Gibbs-Ensemble Molecular Dynamics: Liquid-Gas Equilibria for Lennard-Jones Spheres and n-Hexane
Authors:M J Kotelyanskii  R Hentschke
Institution:1. Max-Planck Institut für Polymerforschung , Ackermannweg 10, 55128, Mainz, Germany;2. N. N. Semenov Institute of Chemical Physics of the Russian Academy of Sciences , ul. Kosygina 4, Moscow, Russia;3. Dept. of Chem. Engineering , University of Delaware , Newark, DE, 19716-3110, USA;4. Max-Planck Institut für Polymerforschung , Ackermannweg 10, 55128, Mainz, Germany
Abstract:Abstract

We present a novel method to simulate phase equilibria in atomic and molecular systems. The method is a Molecular Dynamics version of the Gibbs-Ensemble Monte Carlo technique, which has been developed some years ago for the direct simulation of phase equilibria in fluid systems. The idea is to have two separate simulation boxes, which can exchange particles (or molecules) in a thermodynamically consistent fashion. Here we pres the derivation of the generalized equations of motion and discuss the relation of the resulting trajectory averages to the relevant ensemble. We test this Gibbs-Ensemble Molecular Dynamics algorithm by applying it to an atomic and a molecular system, i.e. to the liquid-gas coexistence in a Lennard-Jones fluid and in n-hexane. In both cases our results are in good accord with previous mean field and Gibbs-Ensemble Monte Carlo results as well as with the experimental data in the case of hexane. We also show that our Gibbs-Ensemble Molecular Dynamics algorithm like other Molecular Dynamics techniques can be used to study the dynamics of the system. Self-diffusion coefficients calculated with this method are in agreement with the result of conventional constant temperature Molecular Dynamics.
Keywords:Gibbs-Ensemble molecular dynamics  liquid-gas coexistence  Lennard-Jones fluid  n-hexane
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