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  6. Vapor−Liquid Equilibrium of Ethanol by Molecular Dynamics Simulation and Voronoi Tessellation
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Vapor−Liquid Equilibrium of Ethanol by Molecular Dynamics Simulation and Voronoi Tessellation

Date Issued
November 1, 2007
Author(s)
Fern, Jared T.
Keffer, David J.  
Steele, William V.
Link to full text
http://pubs.acs.org/doi/abs/10.1021/jp075414u
Permanent URI
https://trace.tennessee.edu/handle/20.500.14382/16071
Abstract

Explicit atom simulations of ethanol were performed by molecular dynamics using the OPLS-AA potential. The phase densities were determined self-consistently by comparing the distribution of Voronoi volumes from two-phase and single-phase simulations. This is the first demonstration of the use of Voronoi tessellation in two-phase molecular dynamics simulation of polyatomic fluids. This technique removes all arbitrary determination of the phase diagram by using single-phase simulations to self-consistently validate the probability distribution of Voronoi volumes of the liquid and vapor phases extracted from the two-phase molecular dynamics simulations. Properties from the two phase simulations include critical temperature, critical density, critical pressure, phase diagram, surface tension, and molecule orientation at the interface. The simulations were performed from 375 to 472 K. Also investigated were the vapor pressure and hydrogen bonding along the two phase envelope. The phase envelope agrees extremely well with literature values from GEMC at lower temperatures. The combined use of two-phase molecular dynamics simulation and Voronoi tessellation allows us to extend the phase diagram toward the critical point.

Disciplines
Chemical Engineering
Comments

Copyright (2007) American Institute of Physics. This article may be downloaded for personal use only. Any other use requires prior permission of the author and the American Institute of Physics.

Recommended Citation
Fern Jared T., Keffer David J., Steele William V. (2007). Vapor−Liquid Equilibrium of Ethanol by Molecular Dynamics Simulation and Voronoi Tessellation. The Journal of Physical Chemistry B, 111 (46), 13278-13286
Embargo Date
May 19, 2010

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