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用 HTPAEN 及其亲水衍生物理解 Am/Cm 分离:量子化学研究。

Understanding Am/Cm separation with HTPAEN and its hydrophilic derivatives: a quantum chemical study.

机构信息

Laboratory of Nuclear Energy Chemistry and Key Laboratory for Biomedical Effects of Nanomaterials and Nanosafety, Institute of High Energy Physics, Chinese Academy of Sciences, Beijing 100049, China.

出版信息

Phys Chem Chem Phys. 2018 May 23;20(20):14031-14039. doi: 10.1039/c7cp08441b.

Abstract

Am3+/Cm3+ separation is an extremely hard but important task in nuclear waste treatment. In this study, Am and Cm complexes formed with a back-extraction agent N,N,N',N'-tetrakis[(6-carboxypyridin-2-yl)methyl]ethylene-diamine (H4TPAEN) and its two derivatives with hydrophilic substituents (methoxy and morpholine groups) were investigated using the density functional theory (DFT). The optimized geometrical structures indicated that the Am3+ cation matched better with the cavities of the three studied ligands than Cm3+, and the Am3+ cations were located deeper in the cavities of the ligands. The bond order and quantum theory of atoms in molecules (QTAIM) analyses suggested that ionic interactions dominated An-N and An-O (An = Cm and Am) bonds. However, weak and different extents of partial covalency could also be found in the Am-N and Cm-N bonds. The O donor atoms in the carboxylate groups preferably coordinated with Cm3+ rather than Am3+, whereas the N atoms preferred Am3+. Therefore, the Am3+/Cm3+ selectivity of H4TPAEN and its two hydrophilic derivatives may be ascribed to the competition between the An-N and An-O interactions and the few dissimilarities in their geometrical structures. Based on our calculations, the methoxy and morpholine groups in the two derivatives can serve as electron-donating groups and enhance the strength of the An-NPY bonds (NPY denotes the nitrogen atom of pyridine ring). When compared with the Am-complex, the Cm-complex exhibited significant strength effect, resulting in the relatively lower Am3+/Cm3+ separation ability of the H4TPAEN's hydrophilic derivatives.

摘要

Am3+/Cm3+ 分离是核废料处理中一项极其困难但重要的任务。在这项研究中,使用密度泛函理论(DFT)研究了与反萃取剂 N,N,N',N'-四[(6-羧基吡啶-2-基)甲基]乙二胺(H4TPAEN)及其具有亲水取代基(甲氧基和吗啉基)的两种衍生物形成的 Am 和 Cm 配合物。优化的几何结构表明,Am3+阳离子与三种研究配体的空腔匹配得更好,Am3+阳离子位于配体空腔更深的位置。键级和原子量子理论(QTAIM)分析表明,离子相互作用主导 An-N 和 An-O(An = Cm 和 Am)键。然而,在 Am-N 和 Cm-N 键中也可以发现微弱且程度不同的部分共价键。羧酸根中的 O 供体原子更倾向于与 Cm3+配位,而不是 Am3+,而 N 原子则更倾向于 Am3+。因此,H4TPAEN 及其两种亲水衍生物的 Am3+/Cm3+选择性可能归因于 An-N 和 An-O 相互作用的竞争以及它们几何结构的微小差异。根据我们的计算,两种衍生物中的甲氧基和吗啉基可以作为供电子基团,增强 An-NPY 键(NPY 表示吡啶环上的氮原子)的强度。与 Am 配合物相比,Cm 配合物表现出显著的强度效应,导致 H4TPAEN 的亲水衍生物的相对较低的 Am3+/Cm3+分离能力。

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