Dependence of the liquid-vapor surface tension on the range of interaction: a test of the law of corresponding states
arXiv:0807.0107 · doi:10.1063/1.3072156
Abstract
The planar surface tension of coexisting liquid and vapor phases of a fluid of Lennard-Jones atoms is studied as a function of the range of the potential using both Monte Carlo simulations and Density Functional Theory. The interaction range is varied from to and the surface tension is determined for temperatures ranging from up to the critical temperature in each case. The results are shown to be consistent with previous studies. The simulation data are well-described by Guggenheim's law of corresponding states but the agreement of the theoretical results depends on the quality of the bulk equation of state.
13 pages, 5 figures
References in corpus (3)
Cited by in corpus (4)
- Density Functional Theory of Inhomogeneous Liquids IV. Squared-gradient approximation and Classical Nucleation Theory
- Classical Density Functional Theory applied to the solid state
- A heuristic rule for classification of classical fluids: Master curves for Mie, Yukawa and square-well potentials
- Role of attractive forces in determining the equilibrium structure and dynamics of simple liquids