English

First-Principles Simulations of Warm Dense Lithium Fluoride

Plasma Physics 2017-04-19 v1

Abstract

We perform first-principles path integral Monte Carlo (PIMC) and density functional theory molecular dynamics (DFT-MD) calculations to explore warm dense matter states of LiF. Our simulations cover a wide density-temperature range of 2.0815.702.08-15.70~g\,cm3^{-3} and 10410910^4-10^9~K. Since PIMC and DFT-MD accurately treat effects of atomic shell structure, we find a pronounced compression maximum and a shoulder on the principal Hugoniot curve attributed to K-shell and L-shell ionization. The results provide a benchmark for widely-used EOS tables, such as SESAME, LEOS, and models. In addition, we compute pair-correlation functions that reveal an evolving plasma structure and ionization process that is driven by thermal and pressure ionization. Finally, we compute electronic density of states of liquid LiF from DFT-MD simulations and find that the electronic gap can remain open with increasing density and temperature to at least 15.7 g ~cm3^{-3}.

Keywords

Cite

@article{arxiv.1704.05197,
  title  = {First-Principles Simulations of Warm Dense Lithium Fluoride},
  author = {K. P. Driver and B. Militzer},
  journal= {arXiv preprint arXiv:1704.05197},
  year   = {2017}
}
R2 v1 2026-06-22T19:19:42.899Z