Entropic forces in binary hard sphere mixtures: Theory and simulation
- 1 July 1997
- journal article
- conference paper
- Published by AIP Publishing in The Journal of Chemical Physics
- Vol. 107 (1) , 205-213
- https://doi.org/10.1063/1.474367
Abstract
We perform extensive Monte Carlo simulations of binary hard-sphere mixtures (with diameter ratios of 5 and 10), to determine the entropic force between (1) a macrosphere and a hard wall, and (2) a pair of macrospheres. The microsphere background fluid (at volume fractions ranging from 0.1 to 0.34) induces an entropic force on the macrosphere(s); the latter component is at infinite dilution. We find good overall agreement, in both cases, with the predictions of a hypernetted chain-based theory for the entropic force. Our results also argue for the validity of the Derjaguin approximation relating the force between convex bodies to that between planar surfaces. The earlier Asakura-Oosawa theory, based on a simple geometric argument, is only accurate in the low-density limit.Keywords
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This publication has 21 references indexed in Scilit:
- Depletion effects in binary hard-sphere fluidsJournal of Physics: Condensed Matter, 1996
- Entropic control of particle motion using passive surface microstructuresNature, 1996
- Depletion force in colloidal systemsPhysica A: Statistical Mechanics and its Applications, 1995
- Direct Observation of the Entropic Potential in a Binary SuspensionPhysical Review Letters, 1994
- Entropically Driven Surface Phase Separation in Binary Colloidal MixturesPhysical Review Letters, 1994
- Evidence for entropy-driven demixing in hard-core fluidsPhysical Review Letters, 1994
- Oscillatory solvation forces: a comparison of theory and experimentThe Journal of Physical Chemistry, 1992
- Interaction free energy between planar walls in dense fluids: An Ornstein-Zernike approach with results for hard-sphere, Lennard-Jones, and dipolar systemsPhysical Review A, 1991
- Effects of polymer solutions on colloid stabilityJournal of Polymer Science: Polymer Physics Edition, 1979
- Interaction between particles suspended in solutions of macromoleculesJournal of Polymer Science, 1958