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Isotope exchange reaction in tritium-contaminated vacuum pump oil: mechanism and HTO effect

机译:tri污染的真空泵油中的同位素交换反应:机理和HTO作用

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As radioactive wastes, contaminated vacuum pump oils from tritium-processing facilities are challenging to dispose of. In this study, we investigated the mechanism of the tritium–hydrogen (T–H) exchange reaction between the tritiated water (HTO) and many typical organic molecules in vacuum pump oil using a density functional theory (DFT) method. The T–H exchange reaction could proceed with two mechanisms, the direct T–H exchange mechanism and the addition–elimination T–H exchange mechanism. The calculation indicates that the direct T–H exchange mechanism is kinetically favored. The HTO molecule is not only a reactant, but also acts as the proton shuttle in the transition state. The number of HTO molecules participating in the reaction is determined by the formation of the stable six-membered ring proton migration transition state. The T–H exchange reaction is selective, and molecules with COOH and OH groups preferentially undergo hydrogen exchange with HTO. In the case of multiple possible products, the calculations correctly predicted the predominant product. The results here will provide guidance for improving the associated decontamination process and reducing the environmental impact.
机译:作为放射性废物,来自tri处理设施的受污染的真空泵油难以处理。在这项研究中,我们使用密度泛函理论(DFT)方法研究了vacuum水(HTO)与真空泵油中许多典型有机分子之间the-氢(T-H)交换反应的机理。 T–H交换反应可以通过两种机制进行,直接的T–H交换机制和加成消除T–H交换机制。计算表明,直接的TH交换机理在动力学上是有利的。 HTO分子不仅是反应物,而且还充当过渡状态下的质子穿梭。参与反应的HTO分子的数量由稳定的六元环质子迁移过渡态的形成决定。 T–H交换反应是选择性的,具有COOH和OH基团的分子优先与HTO进行氢交换。对于多种可能的产品,计算正确地预测了主要产品。此处的结果将为改进相关的净化过程和减少环境影响提供指导。

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