paper

The finite- Lorentz number and the thermal conductivity. Aluminum and carbon conductivities from ambient to millions of degrees Kelvin

arXiv:2404.19692

Abstract

Theoretical prediction of the thermal conductivity of metal-like electron-ion systems would be greatly simplified if a convenient generalization of the Lorentz number for arbitrary temperatures () and densities were available. Such calculations are needed in astrophysics, high-energy-density physics, semiconductor physics as well as in materials science. We present a finite- form of , expressed in terms of elementary Fermi integrals. It is a universal function of , where is the Fermi energy of the electrons. A convenient four-parameter fit to for further simplifies the applications. The effect of electron-electron interactions is also briefly discussed. Calculations for and thermal conductivities for Al and C are presented at several compressions and into the million-Kelvin range. Experimental isobaric conductivities for Al just above the meting point, and isochoric conductivities for Al and C from available density-functional theory simulations and average-atom calculations are used as comparisons.

5 pages, 5 figures and also supplementary material with six pages and two figures