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Updated: Mar 23, 2026

Separation of Uranium and Thorium for 230Th-U Dating of Submarine Hydrothermal Sulfides
Published on: May 20, 2019
Automated analysis of ultra-trace 236U and natural uranium isotopes via integrated sample preparation and ICP-MS/MS
Jisheng Chen1, Youyi Ni2, Wenting Bu2
1Institute of Nuclear Physics and Chemistry, China Academy of Engineering Physics, Mianyang, 621900, China; Guangdong Provincial Key Laboratory of Marine Disaster Prediction and Prevention & Institute of Marine Sciences, Shantou University, Shantou, 515063, China.
Abstract:
Highly efficient and accurate analysis of ultra-trace anthropogenic 236U in the presence of natural uranium isotopes is essential for nuclear forensics and environmental monitoring. In this study, we developed an integrated analytical method for the determination of 234U, 235U, 236U, and 238U by combining highly automated sample preparation with highly sensitive ICP-MS/MS detection. Automated total dissolution was employed to ensure complete extraction of both endogenous and exogenous uranium from solid matrices, while reproducible chemical separation was achieved using an automated platform equipped with regenerable UTEVA resin. This optimized procedure yielded exceptionally low operational blanks for 236U at femtogram level. Moreover, the final eluent volume was minimized to 1.5 mL, allowing direct introduction into the ICP-MS/MS. By utilizing a membrane desolvation sample introduction system and a novel mass-shift mode (targeting UO2+ species), the ICP-MS/MS sensitivity exceeded 4.1 × 106 cps/ppb, while the 235UH + interference formation rate for 236U was suppressed to 7.1 × 10-10. Consequently, the achieved detection limits for 236U and the 236U/238U atom ratio were as low as 1.85 fg/g and 5 × 10-12, respectively. This method was successfully applied to determine the uranium isotopic composition in sediments from the adjacent sea area of the Daya Bay Nuclear Power Plant. These results demonstrate that the proposed method provides a robust and high-throughput solution for accurately quantifying of ultra-trace 236U in environmental samples, such as those impacted by the global fallout.
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