Numerical test of finite-size scaling predictions for the droplet condensation-evaporation transition
arXiv:1605.05591 · doi:10.1088/1742-6596/759/1/012009
Abstract
We numerically study the finite-size droplet condensation-evaporation transition in two dimensions. We consider and compare two orthogonal approaches, namely at fixed temperature and at fixed density, making use of parallel multicanonical simulations. The equivalence between Ising model and lattice gas allows us to compare to analytical predictions. We recover the known background density (at fixed temperature) and transition temperature (at fixed density) in the thermodynamic limit and compare our finite-size deviations to the predicted leading-order finite-size corrections.
8 pages, 4 figures, contribution to proceedings of CCP2015
References in corpus (4)
- Experimental mathematics on the magnetic susceptibility of the square lattice Ising model
- Monte Carlo study of the evaporation/condensation transition on different Ising lattices
- Exploring different regimes in finite-size scaling of the droplet condensation-evaporation transition
- A proof of the Gibbs-Thomson formula in the droplet formation regime