Two- and three-phase equilibria in polydisperse Yukawa hard-sphere mixture. High temperature and mean spherical approximations

Phase behavior of the Yukawa hard-sphere polydisperse mixture with high degree of polydispersity is studied using high temperature approximation (HTA) and mean spherical approximation (MSA). We have extended and applied the scheme developed to calculate the phase diagrams of polydisperse mixtures de...

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Main Authors: T.V. Hvozd, Y.V. Kalyuzhnyi
Format: Article
Language:English
Published: Institute for Condensed Matter Physics 2016-03-01
Series:Condensed Matter Physics
Subjects:
Online Access:http://dx.doi.org/10.5488/CMP.19.23603
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spelling doaj-d4f601eb76a94467a1dbc8b97f9ea7fb2020-11-24T23:00:41ZengInstitute for Condensed Matter PhysicsCondensed Matter Physics1607-324X2016-03-011922360310.5488/CMP.19.23603Two- and three-phase equilibria in polydisperse Yukawa hard-sphere mixture. High temperature and mean spherical approximationsT.V. HvozdY.V. KalyuzhnyiPhase behavior of the Yukawa hard-sphere polydisperse mixture with high degree of polydispersity is studied using high temperature approximation (HTA) and mean spherical approximation (MSA). We have extended and applied the scheme developed to calculate the phase diagrams of polydisperse mixtures described by the truncatable free energy models, i.e., the models with Helmholtz free energy defined by the finite number of the moments of the species distribution function. At high degree of polydispersity, several new features in the topology of the two-phase diagram have been observed: the cloud and shadow curves intersect twice and each of them forms a closed loop of the ellipsoidal-like shape with the liquid and gas branches of the cloud curve almost coinciding. Approaching a certain limiting value of the polydispersity index, the cloud and shadow curves shrink and disappear. Beyond this limiting value, polydispersity induces the appearance of the three-phase equilibrium at lower temperatures. We present and analyze corresponding phase diagrams together with distribution functions of three coexisting phases. In general, good agreement was observed between predictions of the two different theoretical methods, i.e., HTA and MSA. Our results confirm qualitative predictions for the three-phase coexistence obtained earlier within the framework of the van der Waals approach.http://dx.doi.org/10.5488/CMP.19.23603polydispersityphase coexistencecolloidal systemsYukawa potential
collection DOAJ
language English
format Article
sources DOAJ
author T.V. Hvozd
Y.V. Kalyuzhnyi
spellingShingle T.V. Hvozd
Y.V. Kalyuzhnyi
Two- and three-phase equilibria in polydisperse Yukawa hard-sphere mixture. High temperature and mean spherical approximations
Condensed Matter Physics
polydispersity
phase coexistence
colloidal systems
Yukawa potential
author_facet T.V. Hvozd
Y.V. Kalyuzhnyi
author_sort T.V. Hvozd
title Two- and three-phase equilibria in polydisperse Yukawa hard-sphere mixture. High temperature and mean spherical approximations
title_short Two- and three-phase equilibria in polydisperse Yukawa hard-sphere mixture. High temperature and mean spherical approximations
title_full Two- and three-phase equilibria in polydisperse Yukawa hard-sphere mixture. High temperature and mean spherical approximations
title_fullStr Two- and three-phase equilibria in polydisperse Yukawa hard-sphere mixture. High temperature and mean spherical approximations
title_full_unstemmed Two- and three-phase equilibria in polydisperse Yukawa hard-sphere mixture. High temperature and mean spherical approximations
title_sort two- and three-phase equilibria in polydisperse yukawa hard-sphere mixture. high temperature and mean spherical approximations
publisher Institute for Condensed Matter Physics
series Condensed Matter Physics
issn 1607-324X
publishDate 2016-03-01
description Phase behavior of the Yukawa hard-sphere polydisperse mixture with high degree of polydispersity is studied using high temperature approximation (HTA) and mean spherical approximation (MSA). We have extended and applied the scheme developed to calculate the phase diagrams of polydisperse mixtures described by the truncatable free energy models, i.e., the models with Helmholtz free energy defined by the finite number of the moments of the species distribution function. At high degree of polydispersity, several new features in the topology of the two-phase diagram have been observed: the cloud and shadow curves intersect twice and each of them forms a closed loop of the ellipsoidal-like shape with the liquid and gas branches of the cloud curve almost coinciding. Approaching a certain limiting value of the polydispersity index, the cloud and shadow curves shrink and disappear. Beyond this limiting value, polydispersity induces the appearance of the three-phase equilibrium at lower temperatures. We present and analyze corresponding phase diagrams together with distribution functions of three coexisting phases. In general, good agreement was observed between predictions of the two different theoretical methods, i.e., HTA and MSA. Our results confirm qualitative predictions for the three-phase coexistence obtained earlier within the framework of the van der Waals approach.
topic polydispersity
phase coexistence
colloidal systems
Yukawa potential
url http://dx.doi.org/10.5488/CMP.19.23603
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AT yvkalyuzhnyi twoandthreephaseequilibriainpolydisperseyukawahardspheremixturehightemperatureandmeansphericalapproximations
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