Surface segregation in a polymer blend. Comparison between Monte Carlo simulation and mean-field theory
- 1 September 1993
- journal article
- research article
- Published by AIP Publishing in The Journal of Chemical Physics
- Vol. 99 (5) , 4121-4127
- https://doi.org/10.1063/1.466108
Abstract
Monte Carlo simulation of wetting of a solid wall by a polymer blend in the one phase region, for χ=0, was performed in a compressible system. We varied the wall interaction preference of one of the components and also the blend composition for the fixed interaction with the wall. The results were compared to the prediction of mean‐field (MF) theory. We found a good agreement in composition profiles at the wall using the same parameters in the theory and in simulation, without additional fitting. Due to compressibility of our system, interaction of chains with the wall and the coil deformation at the wall small deviations of the total density and thus also of the composition profile from MF theory were found in close vicinity of the wall.Keywords
This publication has 18 references indexed in Scilit:
- The effects of confinement and surface interactions on coexistence in a binary polymer mixtureThe Journal of Chemical Physics, 1992
- Spinodal decomposition in thin films of a polymer blendPhysical Review Letters, 1992
- Determination of the concentration profile at the surface of deuterated polystyrene/hydrogenated polystyrene blends using high-resolution ion scattering techniquesMacromolecules, 1991
- Surface-directed spinodal decompositionPhysical Review Letters, 1991
- Effect of long-range surface interactions on wetting transitions of polymer mixturesPhysical Review Letters, 1991
- The Form of the Enriched Surface Layer in Polymer BlendsEurophysics Letters, 1990
- Surface Enrichment in an Isotopic Polymer BlendPhysical Review Letters, 1989
- Model calculations for wetting transitions in polymer mixturesJournal de Physique, 1985
- Surface spinodals and extended wetting in fluids and polymer solutionsThe Journal of Chemical Physics, 1983
- Critical point wettingThe Journal of Chemical Physics, 1977