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异双金属配合物中电子转移至高价铀的大环控制

Macrocyclic control of electron transfer to high valent uranium in heterobimetallic complexes.

作者信息

Kumar Amit, Golwankar Riddhi R, Pyrch Mikaela M F, Cooper Fynn L, Arehart Grant A, Carter Korey P, Oliver Allen G, Day Victor W, Forbes Tori Z, Blakemore James D

机构信息

Department of Chemistry, University of Kansas, 1567 Irving Hill Road, Lawrence, Kansas 66045, USA.

Department of Chemistry, University of Iowa, Iowa City, Iowa 52242, USA.

出版信息

Dalton Trans. 2025 May 20;54(20):8061-8075. doi: 10.1039/d4dt03503h.

Abstract

The redox properties of the uranyl ion, UO, influence the chemistry required for nuclear fuel reprocessing, but little spectroscopic insight is available to support design strategies for influencing the redox properties of uranium complexes. Here, structural studies with X-ray diffraction analysis, electrochemical methods, and Raman spectroscopy have been used to examine one strategy for influencing uranyl redox chemistry, namely co-encapsulation of UO and secondary metal cations (Cs, Rb, K, Na, Li, and Ca) in macrocyclic ligands. Two ligands are compared in this work that differ in the denticities of their secondary cation binding sites (pentadentate hexadentate), enabling direct quantification of influences on the redox and vibrational properties of the uranyl moiety. The U/U thermodynamic reduction potential is correlated with the effective Lewis acidity of the secondary metal cations; solid-state and solution-phase Raman spectra show that this effect can be attributed to electrostatics that effectively drive diminished electron donation to uranium in adducts of more strongly Lewis acidic cations. The heterogeneous electron transfer (ET) rates for U/U redox processes, however, depend on both the strength of cation binding in the macrocycles and the Lewis acidity of the cations, suggesting opportunities for molecular design in development of reagents for nuclear fuel reprocessing/separations.

摘要

铀酰离子(UO)的氧化还原性质会影响核燃料后处理所需的化学过程,但目前几乎没有光谱学方面的见解来支持影响铀配合物氧化还原性质的设计策略。在此,利用X射线衍射分析、电化学方法和拉曼光谱进行的结构研究,来考察一种影响铀酰氧化还原化学的策略,即在大环配体中共封装UO和二级金属阳离子(Cs、Rb、K、Na、Li和Ca)。在这项工作中比较了两种配体,它们的二级阳离子结合位点的齿数不同(五齿和六齿),从而能够直接量化对铀酰部分氧化还原和振动性质的影响。U/U的热力学还原电位与二级金属阳离子的有效路易斯酸度相关;固态和溶液相拉曼光谱表明,这种效应可归因于静电作用,在路易斯酸性更强的阳离子加合物中,静电作用有效地减少了向铀的电子给予。然而,U/U氧化还原过程的异相电子转移(ET)速率既取决于大环中阳离子结合的强度,也取决于阳离子的路易斯酸度,这表明在开发用于核燃料后处理/分离的试剂时,分子设计存在机会。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/71b2/11970473/196515b8a913/d4dt03503h-f1.jpg

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