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Studtite 在盐溶液中的稳定性:铀过氧卤络合物的鉴定。

Stability of Studtite in Saline Solution: Identification of Uranyl-Peroxo-Halo Complex.

机构信息

Department of Chemistry, School of Engineering Sciences in Chemistry, Biotechnology and Health, KTH Royal institute of Technology, SE-10044 Stockholm, Sweden.

出版信息

Inorg Chem. 2022 Jun 6;61(22):8455-8466. doi: 10.1021/acs.inorgchem.2c00233. Epub 2022 May 24.

Abstract

Hydrogen peroxide is produced upon radiolysis of water and has been shown to be the main oxidant driving oxidative dissolution of UO-based nuclear fuel under geological repository conditions. While the overall mechanism and speciation are well known for granitic groundwaters, considerably less is known for saline waters of relevance in rock salt or during emergency cooling of reactors using seawater. In this work, the ternary uranyl-peroxo-chloro and uranyl-peroxo-bromo complexes were identified using IR, Raman, and nuclear magnetic resonance (NMR) spectroscopy. Based on Raman spectra, the estimated stability constants for the identified uranyl-peroxo-chloro ((UO)(O)(Cl)(HO)) and uranyl-peroxo-bromo ((UO)(O)(Br)(HO)) complexes are 0.17 and 0.04, respectively, at ionic strength ≈5 mol/L. It was found that the uranyl-peroxo-chloro complex is more stable than the uranyl-peroxo-bromo complex, which transforms into studtite at high uranyl and HO concentrations. Studtite is also found to be dissolved at a high ionic strength, implying that this may not be a stable solid phase under very saline conditions. The uranyl-peroxo-bromo complex was shown to facilitate HO decomposition via a mechanism involving reactive intermediates.

摘要

过氧化氢是水辐射分解的产物,已被证明是在地质处置条件下驱动 UO 基核燃料氧化溶解的主要氧化剂。虽然花岗质地下水的整体机制和形态已经很清楚,但对于在岩盐中或使用海水紧急冷却反应堆时相关的盐水,了解得要少得多。在这项工作中,使用红外、拉曼和核磁共振(NMR)光谱鉴定了三元铀过氧氯和铀过氧溴络合物。根据拉曼光谱,在离子强度≈5 mol/L 时,鉴定出的铀过氧氯((UO)(O)(Cl)(HO))和铀过氧溴((UO)(O)(Br)(HO))络合物的估计稳定常数分别为 0.17 和 0.04。发现铀过氧氯络合物比铀过氧溴络合物更稳定,后者在高铀酰和 HO 浓度下转化为 studtite。还发现 studtite 在高离子强度下溶解,这意味着在非常咸的条件下,它可能不是一种稳定的固相。铀过氧溴络合物被证明通过涉及反应中间体的机制促进 HO 分解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d7f0/9175179/d5bbbdd2324a/ic2c00233_0002.jpg

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