Orientational ordering and phase behaviour of binary mixtures of hard
spheres and hard spherocylinders
spheres and hard spherocylinders
File(s)hshscBulk.pdf (1.66 MB)
Accepted version
Author(s)
Jackson, G
Wu, L
Avendano, C
Malijevsky, A
Muller, EA
Type
Journal Article
Abstract
We study structure and fluid-phase behaviour of a binary mixture of hard spheres
(HSs) and hard spherocylinders (HSCs) in isotropic and nematic states using the
NPnAT ensemble Monte Carlo (MC) method in which a normal pressure tensor
component is fixed in a system confined between two hard walls. The method allows
one to estimate the location of the isotropic-nematic phase transition and to observe
the asymmetry in the composition between the coexisting phases, with the expected
increase of the HSC concentration in the nematic phase. This is in stark contrast
with the previously reported MC simulations where a conventional isotropic NP T
ensemble was used. We further compare the simulation results with the theoretical
predictions of two analytic theories that extend the original Parsons-Lee theory using
the one-fluid and the many-fluid approximation [Malijevsk´y at al J. Chem. Phys.
129, 144504 (2008)]. In the one-fluid version of the theory the properties of the
mixture are mapped on an effective one-component HS system while in the many-
fluid theory the components of the mixtures are represented as separate effective HS
particles. The comparison reveals that both the one- and the many-fluid approaches
provide a reasonably accurate quantitative description of the mixture including the
predictions of the isotropic-nematic phase boundary and degree of orientational order
of the HSC-HS mixtures.
(HSs) and hard spherocylinders (HSCs) in isotropic and nematic states using the
NPnAT ensemble Monte Carlo (MC) method in which a normal pressure tensor
component is fixed in a system confined between two hard walls. The method allows
one to estimate the location of the isotropic-nematic phase transition and to observe
the asymmetry in the composition between the coexisting phases, with the expected
increase of the HSC concentration in the nematic phase. This is in stark contrast
with the previously reported MC simulations where a conventional isotropic NP T
ensemble was used. We further compare the simulation results with the theoretical
predictions of two analytic theories that extend the original Parsons-Lee theory using
the one-fluid and the many-fluid approximation [Malijevsk´y at al J. Chem. Phys.
129, 144504 (2008)]. In the one-fluid version of the theory the properties of the
mixture are mapped on an effective one-component HS system while in the many-
fluid theory the components of the mixtures are represented as separate effective HS
particles. The comparison reveals that both the one- and the many-fluid approaches
provide a reasonably accurate quantitative description of the mixture including the
predictions of the isotropic-nematic phase boundary and degree of orientational order
of the HSC-HS mixtures.
Date Issued
2015-07-31
Date Acceptance
2015-06-14
Citation
The Journal of Chemical Physics, 2015, 143
ISSN
0021-9606
Publisher
American Institute of Physics
Journal / Book Title
The Journal of Chemical Physics
Volume
143
Copyright Statement
Copyright © 2015 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. The following article appeared in (citation of published article) and may be found at (URL/link for published article abstract).
Publication Status
Published
Article Number
044906