Fluid - solid transition in simple systems using density functional theory
arXiv:1411.6450 · doi:10.1063/1.4931376
Abstract
A free energy functional for a crystal proposed by Singh and Singh (Europhysics Letters \textbf{88}, 16005 (2009)) which contains both the symmetry-conserved and symmetry-broken parts of the direct pair correlation function has been used to investigate the fluid-solid transition in systems interacting via purely repulsive WCA Lennard - Jones (RLJ) potential and the full Lennard - Jones (LJ) potential. The results found for freezing parameters for the fluid - face centred cubic (fcc) crystal transition are in very good agreement with simulation results. It is shown that although the contribution made by the symmetry broken part to the grand thermodynamic potential at the freezing point is small compared to that of the symmetry conserving part, its role is crucial in stabilizing the crystalline structure and on values of freezing parameters. The effect of attractive part of the LJ potential on the freezing parameters is found to be small, confirming the view that the fluid - solid transition is primarily determined by the repulsive part of the potential.
28 pages, 11 figures
References in corpus (5)
- Description of hard sphere crystals and crystal-fluid interfaces: a critical comparison between density functional approaches and a phase field crystal model
- Pair correlation functions in nematics, free-energy functional and isotropic-nematic transition
- Pair Correlation Functions and a Free-Energy Functional for the Nematic Phase
- Correlation functions in liquids and crystals : Free energy functional and liquid - crystal transition
- Freezing of a two dimensional fluid in to a crystalline phase : Density functional approach