Wetting and Capillary Condensation in Symmetric Polymer Blends: A comparison between Monte Carlo Simulations and Self-Consistent Field Calculations
arXiv:cond-mat/9805344 · doi:10.1021/ma980052x
Abstract
We present a quantitative comparison between extensive Monte Carlo simulations and self-consistent field calculations on the phase diagram and wetting behavior of a symmetric, binary (AB) polymer blend confined into a film. The flat walls attract one component via a short range interaction. The critical point of the confined blend is shifted to lower temperatures and higher concentrations of the component with the lower surface free energy. The binodals close the the critical point are flattened compared to the bulk and exhibit a convex curvature at intermediate temperatures -- a signature of the wetting transition in the semi-infinite system. Investigating the spectrum of capillary fluctuation of the interface bound to the wall, we find evidence for a position dependence of the interfacial tension. This goes along with a distortion of the interfacial profile from its bulk shape. Using an extended ensemble in which the monomer-wall interaction is a stochastic variable, we accurately measure the difference between the surface energies of the components, and determine the location of the wetting transition via the Young equation. The Flory-Huggins parameter at which the strong first order wetting transition occurs is independent of chain length and grows quadratically with the integrated wall-monomer interaction strength. We estimate the location of the prewetting line. The prewetting manifests itself in a triple point in the phase diagram of very thick films and causes spinodal dewetting of ultrathin layers slightly above the wetting transition. We investigate the early stage of dewetting via dynamic Monte Carlo simulations.
to appear in Macromolecules
Cited by in corpus (18)
- Biological and synthetic membranes: What can be learned from a coarse-grained description?
- Symmetric Diblock Copolymers in Thin Films (I): Phase stability in Self-Consistent Field Calculations and Monte Carlo Simulations
- Symmetric Diblock Copolymers in Thin Films (II): Comparison of Profiles between Self-Consistent Field Calculations and Monte Carlo Simulations
- Monte Carlo Methods for Estimating Interfacial Free Energies and Line Tensions
- Kinetics of Phase Separation in Thin Films: Simulations for the Diffusive Case
- A symmetric polymer blend confined into a film with antisymmetric surfaces: interplay between wetting behavior and phase diagram
- Critical behavior of a colloid-polymer mixture confined between walls
- Interface localisation-delocalisation transition in a symmetric polymer blend: a finite-size scaling Monte Carlo study
- Spinodal Decomposition in Thin Films: Molecular Dynamics Simulations of a Binary Lennard-Jones Fluid Mixture
- Non-monotonous crossover between capillary condensation and interface localisation/delocalisation transition in binary polymer blends
- A Monte Carlo Test of the Fisher-Nakanishi-Scaling Theory for the Capillary Condensation Critical Point
- Finite size effects on the phase diagram of a binary mixture confined between competing walls
- Study of first-order interface localization-delocalization transition in thin Ising-films using Wang-Landau sampling
- Interfacial profiles between coexisting phases in thin films: Cahn Hilliard treatment versus capillary waves
- Phase transitions in nanosystems caused by interface motion: The Ising bi-pyramid with competing surface fields
- Wetting transitions in polydisperse fluids
- Generating multi-chain configurations of an inhomogeneous melt from the knowledge of single-chain properties
- Interface repulsion and lamellar structures in thin films of homopolymer blends due to thermal oscillations