Wide-ranged equation of state models for elements from the atom-in-jellium approach

ORAL

Abstract


We discuss the construction of wide-ranged equation of state models for elements using a DFT-based average-atom model. In our approach, high pressure cold, ion-thermal, and electron-thermal contributions of the free energy are all created from the atom-in-jellium paradigm. In particular, the ionic excitation piece is constructed by computing the restoring force to small displacements of the nucleus within a neutral spherical jellium cell, and the Lindemann criterion is adopted to predict the density-dependent melt curve. We show that with a minimum of fitting to low pressure experimental data (e.g., ambient density, melt temperature at ambient pressure), remarkably accurate wide-ranged equations of state can be generated using this method, as demonstrated by comparing to high pressure experimental data and more sophisticated ab initio predictions.

*This work was performed under the auspices of the U.S. Department of Energy by Lawrence Livermore National Laboratory under Contract DE- AC52-07NA27344

Presenters

  • Lorin Benedict

    • Lawrence Livermore Natl Lab

Authors

  • Lorin Benedict

    • Lawrence Livermore Natl Lab
  • Damian Swift

    • Lawrence Livermore Natl Lab
    • Lawrence Livermore National Laboratory
  • Thomas Lockard

    • Lawrence Livermore Natl Lab
  • Philip A Sterne

    • Lawrence Livermore Natl Lab
  • Mandy Bethkenhagen

    • Physics, University of Rostock
    • University of Rostock
  • Sebastien Hamel

    • Lawrence Livermore Natl Lab
  • Alfredo A. Correa

    • Lawrence Livermore Natl Lab
  • Raymond Smith

    • Lawrence Livermore National Laboratory
    • Lawrence Livermore Natl Lab
    • Lawrence Livemore
  • Christine J Wu

    • Lawrence Livermore Natl Lab