Fast and Accurate Quantum Molecular Dynamics of Dense Plasmas Across Temperature Regimes
Abstract
We develop and implement a new quantum molecular dynamics approximation that allows fast and accurate simulations of dense plasmas from cold to hot conditions. The method is based on a carefully designed orbital-free implementation of density functional theory. The results for hydrogen and aluminum are in very good agreement with Kohn-Sham (orbital-based) density functional theory and path integral Monte Carlo calculations for microscopic features such as the electron density as well as the equation of state. The present approach does not scale with temperature and hence extends to higher temperatures than is accessible in the Kohn-Sham method and lower temperatures than is accessible by path integral Monte Carlo calculations, while being significantly less computationally expensive than either of those two methods.
- Publication:
-
Physical Review Letters
- Pub Date:
- October 2014
- DOI:
- arXiv:
- arXiv:1407.7051
- Bibcode:
- 2014PhRvL.113o5006S
- Keywords:
-
- 52.65.-y;
- 52.25.Kn;
- 71.15.Mb;
- 71.15.Pd;
- Plasma simulation;
- Thermodynamics of plasmas;
- Density functional theory local density approximation gradient and other corrections;
- Molecular dynamics calculations and other numerical simulations;
- Physics - Plasma Physics;
- Condensed Matter - Materials Science;
- Physics - Computational Physics
- E-Print:
- 7 pages