Lennard-Jones systems near solid walls: Computing interfacial free energies from molecular simulation methods
arXiv:1306.0411 · doi:10.1063/1.4819061
Abstract
Different computational techniques in combination with molecular dynamics computer simulation are used to to determine the wall-liquid and the wall-crystal interfacial free energies of a modified Lennard-Jones (LJ) system in contact with a solid wall. Two different kinds of solid walls are considered: a flat structureless wall and a structured wall consisting of an ideal crystal with the particles rigidly attached to fcc lattice sites. Interfacial free energies are determined by a thermodynamic integration scheme, the anisotropy of the pressure tensor, the non-equilibrium work method based on Bennett acceptance criteria, and a method using Cahn's adsorption equations based on the interfacial thermodynamics of Gibbs. For the flat wall, interfacial free energies as a function of different densities of the LJ liquid and as a function of temperature along the coexistence curve are calculated. In case of a structured wall, the interaction strength between the wall and the LJ system and the lattice constant of the structured wall are varied. Using the values of the wall-liquid and wall-crystal interfacial energies along with the value for the crystal-liquid interfacial free energy determined previously for the same system by the "cleaving potential method", we obtain the contact angle as a function of various parameters; in particular the conditions are found under which partial wetting occurs.
12 pages, 10 figures
References in corpus (5)
- Rare events and the convergence of exponentially averaged work values
- Phase behavior of hard spheres confined between parallel hard plates: Manipulation of colloidal crystal structures by confinement
- Comparison of free energy estimators and their dependence on dissipated work
- Wall-liquid and wall-crystal interfacial free energies via thermodynamic integration: A molecular dynamics simulation study
- Methods to Compute Pressure and Wall Tension in Fluids containing Hard Particles
Cited by in corpus (6)
- Crystal-liquid interfacial free energy via thermodynamic integration
- Effects of surface interactions on heterogeneous ice nucleation for a monatomic water model
- Crystal-liquid interfacial free energy of hard spheres via a novel thermodynamic integration scheme
- Adsorption-Induced Deformation of a Nanoporous Material: Influence of the Fluid-Adsorbent Interaction and Surface Freezing on the Pore-Load Modulus Measurement
- Excess free energy of supercooled liquids at disordered walls
- Free energy cost of forming an interface between a crystal and its frozen version