Gas-liquid critical parameters of asymmetric models of ionic fluids
arXiv:0912.3684 · doi:10.1103/PhysRevE.81.031110
Abstract
The effects of size and charge asymmetry on the gas-liquid critical parameters of a primitive model (PM) of ionic fluids are studied within the framework of the statistical field theory based on the collective variables method. Recently, this approach has enabled us to obtain the correct trends of the both critical parameters of the equisize charge-asymmetric PM without assuming ionic association. In this paper we focus on the general case of an asymmetric PM characterized by the two parameters: hard-sphere diameter-, and charge, , ratios of the two ionic species. We derive an explicit expression for the chemical potential conjugate to the order parameter which includes the effects of correlations up to the third order. Based on this expression we consider the three versions of PM: a monovalent size-asymmetric PM (, ), an equisize charge-asymmetric PM (, ) and a size- and charge-asymmetric PM (, ). Similar to simulations, our theory predicts that the critical temperature and the critical density decrease with the increase of size asymmetry. Regarding the effects of charge asymmetry, we obtain the correct trend of the critical temperature with , while the trend of the critical density obtained in this approximation is inconsistent with simulations, as well as with our previous results found in the higher-order approximation. We expect that the consideration of the higher-order correlations will lead to the correct trend of the critical density with charge asymmetry.
23 pages, 6 figures
References in corpus (6)
- Universality of Ionic Criticality: Size- and Charge-Asymmetric Electrolytes
- Field theory for size- and charge asymmetric primitive model of electrolytes. Mean-field stability analysis and pretransitional effects
- New mean field theories for the liquid-vapor transition of charged hard spheres
- How Multivalency controls Ionic Criticality
- Gas-liquid critical point in ionic fluids
- A mesoscopic field theory of ionic systems versus a collective variable approach
Cited by in corpus (9)
- Mesoscopic theory for inhomogeneous mixtures
- Vapour-liquid phase diagram for an ionic fluid in a random porous medium
- Primitive models of room temperature ionic liquids. Liquid-gas phase coexistence
- Vapour-liquid critical parameters of a : primitive model of ionic fluids confined in disordered porous media
- Vapor-liquid phase behavior of a size-asymmetric model of ionic fluids confined in a disordered matrix: the collective variables-based approach
- Phase behaviour in ionic solutions: restricted primitive model of ionic liquid in explicit neutral solvent
- Spatial inhomogeneities in ionic liquids, charged proteins and charge stabilized colloids from collective variables theory
- Vapour-liquid phase behaviour of primitive models of ionic liquids confined in disordered porous media
- Gas-liquid phase equilibrium in ionic fluids: Coulomb versus non-Coulomb interactions