Zheng Xiu-Jun, Bell Nicola L, Stevens Charlotte J, Zhong Yu-Xi, Schreckenbach Georg, Arnold Polly L, Love Jason B, Pan Qing-Jiang
Key Laboratory of Functional Inorganic Material Chemistry of Education Ministry, School of Chemistry and Materials Science, Heilongjiang University, Harbin 150080, China.
EaStCHEM School of Chemistry, University of Edinburgh, Edinburgh, UKEH9 3FJ.
Dalton Trans. 2016 Oct 12;45(40):15910-15921. doi: 10.1039/c6dt01625a.
The computationally- and experimentally-determined molecular structures of a bis-uranyl(vi) complex of an expanded Schiff-base polypyrrolic macrocycle [(UO)(L)] are in close agreement only if the pyridine in the fifth equatorial donor site on the uranium is included in the calculations. The relativistic density functional theory (DFT) calculations presented here are augmented from those on previously reported simpler frameworks, and demonstrate that other augmentations, such as the incorporation of condensed-phase media and the changes in the peripheral groups of the ligand, have only a slight effect. Synthetic routes to pure samples of the bis- and mono-uranyl(vi) complexes have been developed using pyridine and arene solvents, respectively, allowing the experimental determination of the molecular structures by X-ray single crystal diffraction; these agree well with the calculated structures. A comprehensive set of calculations has been performed on a series of actinyl AnO complexes of this macrocyclic ligand. These include both bis- and mono-actinyl adducts for the metals U, Np and Pu, and formal oxidation states VI and V. The reduction potentials of the complexes for U, Np, and Pu, incorporating both solvation and spin-orbit coupling considerations, show the order Np > Pu > U. The agreement between experimental and computed data for U is excellent, suggesting that at this level of computation predictions made about the significantly more radiotoxic Np and Pu molecules should be accurate. A particularly unusual structure of the mononuclear plutonyl(v) complex was predicted by quantum chemical calculations, in which a twist in the macrocycle allows one of the two endo-oxo groups to form a hydrogen bond to one pyrrole group of the opposite side of the macrocycle, in accordance with this member of the set containing the most Lewis basic oxo groups.
只有当计算中包含铀上第五个赤道供体位点的吡啶时,通过计算和实验确定的扩展席夫碱聚吡咯大环双铀酰(VI)配合物[(UO)(L)]的分子结构才会密切一致。本文提出的相对论密度泛函理论(DFT)计算在先前报道的更简单框架的基础上进行了扩展,并表明其他扩展,如引入凝聚相介质和配体外围基团的变化,只有轻微影响。分别使用吡啶和芳烃溶剂开发了双铀酰(VI)和单铀酰(VI)配合物纯样品的合成路线,从而通过X射线单晶衍射对分子结构进行实验测定;这些结果与计算结构吻合良好。对该大环配体的一系列锕酰AnO配合物进行了全面的计算。这些包括金属U、Np和Pu的双锕酰和单锕酰加合物,以及形式氧化态VI和V。考虑溶剂化和自旋轨道耦合因素的U、Np和Pu配合物的还原电位显示顺序为Np > Pu > U。U的实验数据和计算数据之间的一致性非常好,这表明在这个计算水平上,对毒性大得多的Np和Pu分子所做的预测应该是准确的。量子化学计算预测了单核钚酰(V)配合物的一种特别不寻常的结构,其中大环的扭曲使两个内氧基团之一与大环另一侧的一个吡咯基团形成氢键,这与该组中含有最多路易斯碱性氧基团的成员一致。