Binary vapour mixtures adsorbed on a graphite surface: A comparison of mean field density functional theory with results from Monte Carlo simulations
- 20 April 1992
- journal article
- research article
- Published by Taylor & Francis in Molecular Physics
- Vol. 75 (6) , 1435-1454
- https://doi.org/10.1080/00268979200101091
Abstract
We make a detailed comparison of the predictions of mean field density functional theory with results from isobaric Monte Carlo simulations of a model of binary vapour mixtures adsorbed on a graphite surface. The mean field theory is based upon a recently developed non-local free energy functional for hard sphere mixtures. As in other tests of mean field density functional theory on related systems we have found that it provides a qualitatively correct picture of the adsorption equilibrium. In addition to an inadequate description of the bulk thermodynamic properties, the mean field approximation leads to poor prediction of influence of the attractive forces upon the structure of the adsorbed layers. We show that quantitative agreement between the DFT and simulation results can be obtained by comparing them at the same relative state of undersaturation and by scaling the adsorption excess by that for the completely filled first layer.Keywords
This publication has 15 references indexed in Scilit:
- Monte Carlo studies of selective adsorption on solid surfaces: Adsorption from vapour mixturesMolecular Physics, 1991
- Free-energy density functional for the inhomogeneous hard-sphere fluid: Application to interfacial adsorptionPhysical Review A, 1990
- Free-energy model for the inhomogeneous hard-sphere fluid mixture and density-functional theory of freezingPhysical Review Letters, 1989
- Lennard-Jones Mixtures in a Cylindrical Pore. A Comparison of Simulation and Density Functional TheoryMolecular Simulation, 1989
- Adsorption equilibria in an isobaric ensembleMolecular Physics, 1988
- Free energy models for nonuniform classical fluidsJournal of Statistical Physics, 1988
- Generalized van der Waals theory. III. The prediction of hard sphere structureAustralian Journal of Chemistry, 1980
- Equation of state for the Lennard-Jones fluidMolecular Physics, 1979
- The interaction of rare gas atoms with graphitized carbon blackThe Journal of Physical Chemistry, 1978
- Role of Repulsive Forces in Determining the Equilibrium Structure of Simple LiquidsThe Journal of Chemical Physics, 1971