Preprint
Article

This version is not peer-reviewed.

Universal Temperature-Dependent Electrical Resistivity in Actinides

Submitted:

26 July 2026

Posted:

28 July 2026

You are already at the latest version

Abstract
Temperature-dependent electrical resistivity ρ(T) is one of the most common types of experimental data analysed in condensed matter physics. For one group of pure metals, the actinides, experimental ρ(T) curves differ radically from one another to the point that there is no unified theoretical approach to understanding and fitting ρ(T) data in these elements. First-principles calculations result in ρ(T) curves that differ from experimental data, even qualitatively. In an attempt to unravel this long-standing problem, here I propose a simple model that accurately fits the ρ(T) data for eight phases of elemental actinides (from thorium (Th) to curium (Cm)) for which experimental data are publicly available to date. The model is based on the concept of two parallel conduction channels: one is described by the Bloch-Grüneisen equation, which is associated with the classical electron-phonon dissipation mechanism, and the other by the Arrhenius equation, which is associated with the nearest-neighbor hopping (NNH) conductivity. Debye temperatures ΘD derived from application of the model to ρ(T) data for eight elemental actinide phases agree well with reported values deduced from heat capacity measurements. For neptunium (Np) a maximum Arrhenius activation energy (among all actinides) of was derived. The model was also successfully applied to ρ(T) data measured on d-phase plutonium-based alloys Pu-Ce and Pu-Ce-Ga.
Keywords: 
;  ;  ;  ;  ;  ;  ;  ;  ;  ;  
Copyright: This open access article is published under a Creative Commons CC BY 4.0 license, which permit the free download, distribution, and reuse, provided that the author and preprint are cited in any reuse.
Prerpints.org logo

Preprints.org is a free preprint server supported by MDPI in Basel, Switzerland.

Subscribe

© 2026 MDPI (Basel, Switzerland) unless otherwise stated

Accessibility

Disclaimer

Terms of Use

Privacy Policy

Privacy Settings