Molecular Dynamics Simulations With First Order Coupling to a Bath of Constant Chemical Potential
- 1 December 1994
- journal article
- research article
- Published by Taylor & Francis in Molecular Simulation
- Vol. 14 (1) , 21-34
- https://doi.org/10.1080/08927029408022005
Abstract
In molecular dynamics simulations the temperature or pressure can be controlled by applying a weak first-order coupling to a bath of constant temperature or pressure. This weak coupling technique to control system properties using a first-order relaxation equation is analyzed from a statistical mechanics point of view. It is shown, how the weak coupling scheme can be generalized and applied to a bath of contstant chemical potential. The presented method, to which in the following will be referred to as chemical potential weak coupling, is applied and tested on a Lennard-Jones fluid. The thermodynamic quantities known from the literature are accuratly reproduced. The temperature and chemical potential weak coupling methods aim to sample the canonical and grand canonical ensembles respectively. By analyzing the fluctuations in energy and number of particles, the tight relation between the ensembles and the distributions obtained from the weak coupling simulations is demonstrated. The influence of the choice of the coupling parameters on the quality of the approximation of the ensemble distribution is discussed.Keywords
This publication has 11 references indexed in Scilit:
- Molecular dynamics and Monte Carlo simulations in the grand canonical ensemble: Local versus global controlThe Journal of Chemical Physics, 1993
- Hard, charged spheres in spherical pores. Grand canonical ensemble Monte Carlo calculationsThe Journal of Chemical Physics, 1992
- Ultrathin films under shearThe Journal of Chemical Physics, 1991
- Molecular dynamics with a variable number of moleculesMolecular Physics, 1991
- Grand-canonical ensemble Monte Carlo study of dense liquidMolecular Physics, 1987
- Molecular dynamics with coupling to an external bathThe Journal of Chemical Physics, 1984
- Calculation of the entropy of liquid chlorine and bromine by computer simulationMolecular Physics, 1979
- Monte Carlo grand canonical ensemble calculation in a gas-liquid transition region for 12-6 ArgonJournal of Computational Physics, 1975
- Ensemble Dependence of Fluctuations with Application to Machine ComputationsPhysical Review B, 1967
- Some Topics in the Theory of FluidsThe Journal of Chemical Physics, 1963