- By:
- Manns, Rebecca; Beiswenger, Toya N; Petrova, Rumyana V; Spano, Tyler L; Niedziela, Jennifer L
- Journal Name:
- Journal of Nuclear Materials
- Page Number:
- 156871
- Volume:
- 632
- Publication Date:
- August 18, 2026
- View DOI Listing:
- https://doi.org/10.1016/j.jnucmat.2026.156871
Abstract
In this work, we investigated how the sequencing of laboratory analytical methods used for chemical and morphological characterization influences analytical findings for particulate materials relevant to the nuclear fuel cycle, including UO2, U3O8, studtite (UO2O2·4H2O), and β-UO3, in the context of nuclear forensic analysis. Particles of each chemistry obtained from consistent production batches were exposed to Raman spectroscopy and scanning electron microscopy in varying orders to elucidate how the order in which the techniques are applied influences morphological and chemical observations as a function of particle size. The results indicate that particles from all four chemistries exposed to high-resolution electron imaging before Raman spectral analysis demonstrate optical vibrational spectral changes that reduce accurate interpretation of the underlying chemistry via Raman spectral analysis. We hypothesize that these changes are due to the thermal load of the electron beam imparted to the sample being unable to be dissipated by materials with poor thermal conduction properties. Results from this study will aid in determining best practices for forensic analysis procedures to reduce uncertainty in chemical determination of unknown particulate samples.