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关于使用电子调制的菲咯啉衍生双三嗪配体进行超钚元素分离的理论见解。

Theoretical Insights into Transplutonium Element Separation with Electronically Modulated Phenanthroline-Derived Bis-Triazine Ligands.

作者信息

Liu Yang, Wang Cong-Zhi, Wu Qun-Yan, Lan Jian-Hui, Chai Zhi-Fang, Liu Qi, Shi Wei-Qun

机构信息

Laboratory of Nuclear Energy Chemistry, Institute of High Energy Physics, Chinese Academy of Sciences, Beijing 100049, China.

Key Laboratory of Superlight Materials and Surface Technology, Ministry of Education, College of Materials Science and Chemical Engineering, Harbin Engineering University, Harbin 150001, China.

出版信息

Inorg Chem. 2021 Jul 19;60(14):10267-10279. doi: 10.1021/acs.inorgchem.1c00668. Epub 2021 Jul 7.

Abstract

In the process of spent fuel reprocessing, it is highly difficult to extract transplutonium elements from adjacent actinides. A deep understanding of the electronic structure of transplutonium complexes is essential for development of steady ligands for in-group separation of transplutonium actinides. In this work, we have systematically explored the potential in-group separation ability of transplutonium elements of typical quadridentate N-donor ligands (phenanthroline-derived bis-triazine, BTPhen derivatives) through quasi-relativistic density functional theory (DFT). Our calculations demonstrate that ligands with electron-donating groups have stronger coordination abilities, and the substitutions of Br and phenol at the 4-position of the 1,10-phenanthroline have a higher effect on the ligand than those at the 5-position. Bonding analysis indicates that the covalent interaction of An complexes becomes stronger from Am to Cf apart from Cm, which is because the energy of the 5f orbital gradually decreases and becomes energy-degenerate with the 2p orbitals of ligands. The most negative values of binding energies indicate the higher stability of Cf complexes, in line with the larger covalency in the Cf-L bonds compared with An-L (An = Am, Cm, Bk). In addition, electron-donating group phenol can enhance the covalent interaction between ligands and heavy actinides. Consequently, the extraction ability of ligands with electron-donating substituents for heavy actinides is generally stronger than other ligands. Nevertheless, these ligands exhibit diverse separation abilities to in-group actinide recovery. Therefore, the enhancement of covalency does not necessarily lead to the improvement of separation ability, which may be caused by different extraction abilities. Compared with the tetradentate N, O-donor ligands (2,9-diamide-1,10-phenanthrolinel, DAPhen derivatives), species with BTPhen ligands display stronger covalent interaction and higher extraction capacity. In terms of in-group separation ability, the BTPhen ligands seem to have advantages in separation of californium from curium, while the DAPhen ligands possess stronger abilities to separate americium from curium. These results may afford some afflatus for the development of effective agents for in-group separation of transplutonium elements.

摘要

在乏燃料后处理过程中,从相邻锕系元素中提取超钚元素极具难度。深入了解超钚配合物的电子结构对于开发用于超钚锕系元素分组分离的稳定配体至关重要。在这项工作中,我们通过准相对论密度泛函理论(DFT)系统地探索了典型四齿氮供体配体(菲咯啉衍生的双三嗪,BTPhen衍生物)对超钚元素的潜在分组分离能力。我们的计算表明,具有供电子基团的配体具有更强的配位能力,并且在1,10 - 菲咯啉的4位上Br和苯酚的取代对配体的影响比在5位上的取代更大。键合分析表明,除了锔之外,从镅到锎,锕系元素配合物的共价相互作用逐渐增强,这是因为5f轨道的能量逐渐降低并与配体的2p轨道发生能量简并。结合能的最负值表明锎配合物具有更高的稳定性,这与Cf - L键相比An - L(An = Am, Cm, Bk)中更大的共价性一致。此外,供电子基团苯酚可以增强配体与重锕系元素之间的共价相互作用。因此,具有供电子取代基的配体对重锕系元素的萃取能力通常比其他配体更强。然而,这些配体对分组锕系元素回收表现出不同的分离能力。因此,共价性的增强不一定导致分离能力的提高,这可能是由不同萃取能力引起的。与四齿氮、氧供体配体(2,9 - 二酰胺 - 1,10 - 菲咯啉,DAPhen衍生物)相比,具有BTPhen配体的物种表现出更强的共价相互作用和更高的萃取能力。就分组分离能力而言,BTPhen配体在从锔中分离锎方面似乎具有优势,而DAPhen配体具有更强的从锔中分离镅的能力。这些结果可能为开发用于超钚元素分组分离的有效试剂提供一些灵感。

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