Many-body Electronic Structure of Metallic alpha-Uranium
Abstract
We present results for the electronic structure of alpha uranium using a recently developed quasiparticle self-consistent GW method (QSGW). This is the first time that the f-orbital electron-electron interactions in an actinide has been treated by a first-principles method beyond the level of the generalized gradient approximation (GGA) to the local density approximation (LDA). We show that the QSGW approximation predicts an f-level shift upwards of about 0.5 eV with respect to the other metallic s-d states and that there is a significant f-band narrowing when compared to LDA band-structure results. Nonetheless, because of the overall low f-electron occupation number in uranium, ground-state properties and the occupied band structure around the Fermi energy is not significantly affected. The correlations predominate in the unoccupied part of the f states. This provides the first formal justification for the success of LDA and GGA calculations in describing the ground-state properties of this material.
Cite
@article{arxiv.0709.3832,
title = {Many-body Electronic Structure of Metallic alpha-Uranium},
author = {Athanasios N. Chantis and R. C. Albers and M. D. Jones and Mark van Schilfgaarde and Takao Kotani},
journal= {arXiv preprint arXiv:0709.3832},
year = {2009}
}
Comments
4 pages, 3 fihgures