Melting of MgO studied using a multicanonical ensemble method combined with a first-principles calculation
arXiv:0906.0881 · doi:10.1143/JPSJ.79.034602
Abstract
Melting of MgO was studied using a multicanonical ensemble method combined with a first-principles calculation. This approach has been successively performed by using a rather simple functional form for a model inter-atomic potential that is determined from first-principles and a novel approximation treating auxiliary degrees of freedom, such as electron thermal excitations, within a multicanonical ensemble method. Although a rather simple model potential was used, this approach could distinguish differences due to the exchange-correlation potential used in the first-principles calculations. The pressure dependence of the melting point, latent heat, and volume change during melting were studied. The obtained dependence was similar to that reported by Alfe which differs from experimental results. This dependence did not change even with the PBEsol exchange-correlation potential.
25 pages, 10 figures; minor update
References in corpus (7)
- Restoring the density-gradient expansion for exchange in solids and surfaces
- Generalized gradient approximation for solids and their surfaces
- An efficient, multiple range random walk algorithm to calculate the density of states
- Determining the density of states for classical statistical models: A random walk algorithm to produce a flat histogram
- The melting curve of MgO from first principles simulations
- Monte Carlo Simulations in Multibaric-Multithermal Ensemble
- Melting slope of MgO from molecular dynamics and density functional theory