Published in

Elsevier, Journal of Nuclear Materials, 2-3(396), p. 218-222

DOI: 10.1016/j.jnucmat.2009.11.009

Links

Tools

Export citation

Search in Google Scholar

First-principles study of UC2 and U2C3

Journal article published in 2010 by Hongliang Shi ORCID, Ping Zhang, Shu-Shen Li, Baotian Wang, Bo Sun
This paper is available in a repository.
This paper is available in a repository.

Full text: Download

Green circle
Preprint: archiving allowed
Red circle
Postprint: archiving forbidden
Red circle
Published version: archiving forbidden
Data provided by SHERPA/RoMEO

Abstract

The electronic structure and mechanical properties of UC2 and U2C3 have been systematically investigated using first-principles calculations by the projector-augmented-wave (PAW) method. Furthermore, in order to describe precisely the strong on-site Coulomb repulsion among the localized U 5f electrons, we adopt the generalized gradient approximation +U formalisms for the exchange-correlation term. We show that our calculated structural parameters and electronic properties for UC2 and U2C3 are in good agreement with the experimental data by choosing an appropriate Hubbard U = 3 eV. As for the chemical bonding nature, the contour plot of charge density and total density of states suggest that UC2 and U2C3 are metallic mainly contributed by the 5f electrons, mixed with significant covalent component resulted from the strong CC bonds. The present results also illustrate that the metal–carbon (UC) bonding and the carbon–carbon covalent bonding in U2C3 are somewhat weaker than those in UC2, leading to the weaker thermodynamic stability at high temperature as observed by experiments.