December 2023

Journal

Thermodynamic non-ideality and disorder heterogeneity in actinide silicate solid solutions

By:
Zhang, Yuanpeng ; Neuefeind, Joerg C; Marcial, J; Guo, Xiaofeng; Zhao, X; Xu, H; Mesbah, A; T nienhuis, E; Szenknect, S; Lin, J; Qi, L; C ewing, R; Dacheus, N; S mc cloy, J
Journal Name:
npj Materials Degradation
Page Number:
34
Volume:
5
Issue Number:
1
Publication Date:
December 27, 2023
View DOI Listing:
https://doi.org/10.1038/s41529-021-00179-0

Abstract

Non-ideal thermodynamics of solid solutions can greatly impact materials degradation behavior. We have investigated an actinide silicate solid solution system (USiO4–ThSiO4), demonstrating that thermodynamic non-ideality follows a distinctive, atomic-scale disordering process, which is usually considered as a random distribution. Neutron total scattering implemented by pair distribution function analysis confirmed a random distribution model for U and Th in first three coordination shells; however, a machine-learning algorithm suggested heterogeneous U and Th clusters at nanoscale (~2 nm). The local disorder and nanosized heterogeneous is an example of the non-ideality of mixing that has an electronic origin. Partial covalency from the U/Th 5f–O 2p hybridization promotes electron transfer during mixing and leads to local polyhedral distortions. The electronic origin accounts for the strong non-ideality in thermodynamic parameters that extends the stability field of the actinide silicates in nature and under typical nuclear waste repository conditions.