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A corresponding-states framework for the description of the Mie family of intermolecular potentials

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Title: A corresponding-states framework for the description of the Mie family of intermolecular potentials
Authors: Ramrattan, NS
Avendaño, C
Mueller, EA
Galindo, A
Item Type: Journal Article
Abstract: The Mie (λr, λa) intermolecular pair potential has been suggested as an alternative to the traditional Lennard–Jones (12–6) potential for modelling real systems both via simulation and theory as its implementation leads to an accuracy and flexibility in the determination of thermophysical properties that cannot be obtained when potentials of fixed range are considered. An additional advantage of using variable-range potentials is noted in the development of coarse-grained models where, as the superatoms become larger, the effective potentials are seen to become softer. However, the larger number of parameters that characterise the Mie potential (λr, λa, σ, ϵ) can hinder a rational study of the particular effects that each individual parameter have on the observed thermodynamic properties and phase equilibria, and higher degeneracy of models is observed. Here a three-parameter corresponding states model is presented in which a cohesive third parameter α is proposed following a perturbation expansion and assuming a mean-field limit. It is shown that in this approximation the free energy of any two Mie systems sharing the same value of α will be the same. The parameter α is an explicit function of the repulsive and attractive exponents and consequently dictates the form of the intermolecular pair potential. Molecular dynamics simulations of a variety of Mie systems over a range of values of α are carried out and the solid–liquid, liquid–vapour and vapour–solid phase boundaries for the systems considered are presented. Using the simulation data, we confirm that systems of the same α exhibit conformal phase behaviour for the fluid-phase properties as well as for the solid–fluid boundary, although larger differences are noted in the solid region; these can be related to the approximations in the definition of the parameter. Furthermore, it is found that the temperature range over which the vapour–liquid envelope of a given Mie system is stable follows a linear dependency with α when expressed as the ratio of the critical–point temperature to the triple–point temperature. The limit where potentials of the Mie family will not present a stable fluid envelope is predicted in terms of the parameter α and the result is found to be in excellent agreement with previous studies. This unique relation between the fluid range and the cohesive parameter α is shown to be useful to limit the pairs of Mie exponents that can be used in coarse-grained potentials to treat real systems in order to obtain temperature ranges of stability for the fluid envelope consistent with experiment.
Issue Date: 19-May-2015
Date of Acceptance: 25-Feb-2015
URI: http://hdl.handle.net/10044/1/21432
DOI: 10.1080/00268976.2015.1025112
ISSN: 0026-8976
Publisher: Taylor and Francis
Start Page: 932
End Page: 947
Journal / Book Title: Molecular Physics: An International Journal at the Interface Between Chemistry and Physics
Volume: 113
Issue: 9-10
Copyright Statement: © 2015 The Author(s). Published by Taylor & Francis. This is an Open Access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/), which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
Sponsor/Funder: Engineering & Physical Science Research Council (EPSRC)
Engineering & Physical Science Research Council (EPSRC)
Engineering & Physical Science Research Council (EPSRC)
Funder's Grant Number: EP/E016340/1
EP/J014958/1
EP/I018212/1
Keywords: Science & Technology
Physical Sciences
Chemistry, Physical
Physics, Atomic, Molecular & Chemical
Chemistry
Physics
Mie potential
conformality
global phase behaviour
corresponding states
EQUATION-OF-STATE
ASSOCIATING FLUID THEORY
COARSE-GRAIN MODEL
FORCE-FIELD
PERTURBATION-THEORY
PHASE-DIAGRAM
SIMULATION
MOLECULES
BEHAVIOR
C-60
Science & Technology
Physical Sciences
Chemistry, Physical
Physics, Atomic, Molecular & Chemical
Chemistry
Physics
Mie potential
conformality
global phase behaviour
corresponding states
EQUATION-OF-STATE
ASSOCIATING FLUID THEORY
COARSE-GRAIN MODEL
FORCE-FIELD
PERTURBATION-THEORY
PHASE-DIAGRAM
SIMULATION
MOLECULES
BEHAVIOR
C-60
0202 Atomic, Molecular, Nuclear, Particle and Plasma Physics
0306 Physical Chemistry (incl. Structural)
0307 Theoretical and Computational Chemistry
Chemical Physics
Publication Status: Published
Online Publication Date: 2015-04-01
Appears in Collections:Chemical Engineering
Faculty of Engineering



This item is licensed under a Creative Commons License Creative Commons