Ryohei Tomita, Jumpei Tomita, Takumi Yomogida, Daisuke Suzuki, Koichi Takamiya, Yasuhito Igarashi, Shinya Yamasaki, Aya Sakaguchi, Kenichiro Yasuda
Plutonium (Pu) isotope ratio analysis of individual particles is important for nuclear safeguards and environmental investigations. A large-geometry secondary ion mass spectrometry (LG-SIMS) methodology was validated for Pu isotopic analysis using Pu-impregnated porous silica particles as surrogate reference materials and subsequently applied to an iron rust sample collected from the Daigo Fukuryu-Maru (Lucky Dragon no. 5), a vessel exposed to Castle Bravo fallout in 1954. Although SEM-EDX screening failed to identify uranium (U)- and Pu-bearing particles, automated particle measurement (APM) using LG-SIMS successfully detected Pu-bearing particles, enabling isotopic characterisation of six particles. Five particles exhibited 240Pu/239Pu ratios of 0.281 ± 0.005-0.310 ± 0.002, whereas one particle exhibited a distinctly lower ratio of 0.198 ± 0.005. The measured 240Pu/239Pu and 242Pu/239Pu ratios were generally consistent with previously reported isotopic signatures of Marshall Islands fallout obtained using bulk analytical and activity measurement techniques. The distinctly lower 240Pu/239Pu ratio observed for one particle provides preliminary evidence for particle-to-particle isotopic heterogeneity that may be obscured by bulk analysis. These results demonstrate the applicability of LG-SIMS to ultra-trace environmental Pu-bearing particles and its potential for revealing particle-scale isotopic heterogeneity in environmental fallout samples.