English

Quantum molecular dynamics simulations of lithium melting using Z-method

Materials Science 2010-10-13 v1 Computational Physics Fluid Dynamics Geophysics

Abstract

We performed first-principles molecular dynamics calculations for lithium using the projector augmented waves method and the generalized gradient approximation as exchange-correlation energy. The melting curve of lithium was computed using the \textit{Z}-method technique for pressures up to 30 GPa, which agrees well with the experimental and two-phase simulated results. The change of the melting line slope from positive to negative was predicted by the characteristic shape inversion of the \textit{Z} curve at about 8.2 GPa. Through analyzing the static properties, we conclude that no liquid-liquid phase transition accompanies the occurrence of the melting line maximum, which is caused by the higher compressibility of the liquid phase compared to the solid phase. In addition, we systematically studied the dynamic and optical properties of lithium near melting curve at critical superheating and melting temperatures. It was suggested that spectra difference at critical superheating and melting temperature may be able to diagnose the homogeneous melting.

Keywords

Cite

@article{arxiv.1010.2294,
  title  = {Quantum molecular dynamics simulations of lithium melting using Z-method},
  author = {Dafang Li and Ping Zhang and Jun Yan},
  journal= {arXiv preprint arXiv:1010.2294},
  year   = {2010}
}

Comments

15 pages, 8 figures

R2 v1 2026-06-21T16:27:07.402Z