Criticality of dipolar fluids: Liquid-vapor condensation versus phase separation in systems of living polymers
- 1 December 1997
- journal article
- research article
- Published by American Physical Society (APS) in Physical Review E
- Vol. 56 (6) , R6252-R6255
- https://doi.org/10.1103/physreve.56.r6252
Abstract
We consider the strongly dipolar fluid as an equilibrium mixture of self-assembled chains as suggested by the results of recent simulations. The free energy of the system is given by the sum of the free energy of an ideal chain mixture and additional terms arising from the interactions. We discuss the inclusion of such terms, namely, dipole-dipole interactions between monomers, hard core interactions between monomers and between chains, and dispersive interactions between monomers and between chains. We calculate the phase diagrams for several ratios of dispersive to dipolar interactions and the corresponding critical points. In agreement with the simulation results we have found ordinary liquid-vapor coexistence for 0.34<λ⩽1. When λ is decreased still further, the theory predicts that coexistence obtains for a fluid of chains. The critical density decreases and the mean chain length at the critical point increases exponentially as λ→0. The reasons why this coexistence between chained fluids was not observed in the simulations are discussed.
Keywords
This publication has 14 references indexed in Scilit:
- Structure of strongly dipolar fluids at low densitiesPhysical Review E, 1996
- Theory of Chain Association versus Liquid CondensationPhysical Review Letters, 1996
- Low-Density Fluid Phase of Dipolar Hard SpheresPhysical Review Letters, 1996
- Monte Carlo study of semiflexible living polymersPhysical Review E, 1995
- Structure of soft-sphere dipolar fluidsPhysical Review E, 1995
- What makes a polar liquid a liquid?Physical Review Letters, 1993
- Chain formation in low density dipolar hard spheres: A Monte Carlo studyPhysical Review Letters, 1993
- Search of the gas–liquid transition of dipolar hard spheresThe Journal of Chemical Physics, 1993
- Orientational order in simple dipolar liquids: Computer simulation of a ferroelectric nematic phasePhysical Review Letters, 1992
- An effective pair potential for dipolar fluidsMolecular Physics, 1984