Density-functional theory for the structures and thermodynamic properties of highly asymmetric electrolyte and neutral component mixtures
- 24 September 2004
- journal article
- Published by American Physical Society (APS) in Physical Review E
- Vol. 70 (3) , 031109
- https://doi.org/10.1103/physreve.70.031109
Abstract
Density-functional theory (DFT) is applied to investigate the structural and thermodynamic properties of concentrated electrolyte and neutral component mixtures that are highly asymmetric in terms of both size and charge mimicking a crowded cellular environment. The excess Helmholtz energy functional is derived from a modified fundamental measure theory for the hard-sphere repulsion and a quadratic functional Taylor expansion for the electrostatic interactions. The direct correlation functions are obtained from the analytical solutions of the mean-spherical approximation. In the context of a primitive model where biomacromolecules are represented by neutral or charged hard spheres and the solvent is represented by a continuous dielectric medium, this DFT is able to take into account both the excluded-volume effects and the long-ranged electrostatic interactions quantitatively. The performance of the theoretical method has been tested with Monte Carlo simulation results from this work and from the literature for the pair correlation functions, excess internal energies, and osmotic coefficients for a wide variety of aqueous dispersions of charged and neutral particles.Keywords
This publication has 34 references indexed in Scilit:
- Density-functional theory of spherical electric double layers and ζ potentials of colloidal particles in restricted-primitive-model electrolyte solutionsThe Journal of Chemical Physics, 2004
- Join the crowdNature, 2003
- Understanding polyelectrolyte solutions: Macroion condensation with emphasis on the presence of neutral co-solutesInternational Reviews in Physical Chemistry, 2002
- A Monte Carlo simulation and symmetric Poisson–Boltzmann study of a four-component electrolyte mixtureThe Journal of Chemical Physics, 1999
- Monte Carlo simulations of a mixture of an asymmetric electrolyte and a neutral speciesMolecular Physics, 1998
- Monte Carlo simulation studies of electrolyte in mixture with a neutral componentThe Journal of Chemical Physics, 1997
- Macromolecular crowding: a forewordBiophysical Chemistry, 1995
- Phase Separation in Multicomponent Aqueous-Protein SolutionsThe Journal of Physical Chemistry, 1995
- A symmetric Poisson-Boltzmann study of a three component macroion solutionMolecular Physics, 1994
- Statistical‐mechanical model of protein precipitation by nonionic polymerAIChE Journal, 1990