September 22, 2026
Journal Article

Interstitialcy-mediated transport in Hematite

Abstract

Defect transport mechanisms drive the performance of materials in both energy storage and energy generating systems. Iron oxide systems are of particular interest with use cases in both realms. Previous studies of a-Fe2O3 (hematite) determined that the primary point defects at elevated temperature are O vacancies and Fe interstitials, and these defects determine transport rates at temperatures >850°C. However, in advanced nuclear reactor designs, operating temperatures will range between 400-800°C. In this study, we utilize isotopic tracers and the nanoscale resolution of atom probe tomography to determine diffusivities at lower temperatures relevant to nuclear energy generating systems. Supported by a density functional theory informed rate theory model, we find a change from vacancy to interstitialcy-mediated transport

Published: September 22, 2026

Citation

Yano K.H., A. Kohnert, B.E. Matthews, S.D. Taylor, J. Christudasjustus, B.P. Uberuaga, and D.K. Schreiber, et al. 2026. Interstitialcy-mediated transport in Hematite. Chemistry of Materials 38, no. 11:5780–5789. PNNL-SA-218969. doi:10.1021/acs.chemmater.6c00913