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首页> 外文期刊>Inorganic Chemistry: A Research Journal that Includes Bioinorganic, Catalytic, Organometallic, Solid-State, and Synthetic Chemistry and Reaction Dynamics >Enhancing Actinide(III) over Lanthanide(III) Selectivity through Hard-by-Soft Donor Substitution: Exploitation and Implication of Near-Degeneracy-Driven Covalency
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Enhancing Actinide(III) over Lanthanide(III) Selectivity through Hard-by-Soft Donor Substitution: Exploitation and Implication of Near-Degeneracy-Driven Covalency

机译:通过逐柔软的供体替代增强镧系元素(III)的镧系元素(III)选择性:利用和近乎退化驱动的共价的含义

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Soft donor ligands often provide higher selectivity for actinides(III) over chemically similar lanthanides(III), e.g., in the Am-III-Eu-III pair. Frequently, the origin of such selectivity is associated with an increased covalency in actinide-ligand bonding. However, the relationship between the degree of covalency and ion selectivity has yet to reach general consensus. Further, it is unclear whether the enhanced covalency leads to a thermodynamic stabilization of the complex or not. Using relativistic density functional theory, we have addressed these outstanding issues by analyzing the subtle change of metal-ligand interactions from a hard donor ligand to a mixed soft-hard one. The present comparative study on the structure of and binding in Am3+ and Eu3+ complexes with 3,4,3-LI(1,2-HOPO) (L) and its mixed-donor variant (LS) shows that the introduction of sulfur as a soft donor atom into the metal coordination sphere indeed infuses an Am3+ selectivity into the otherwise nonselective ligand L but also leads to a significant reduction of the metal-binding Gibbs free energies. Natural population analysis, charge decomposition analysis, and its extended version point to the critical role of ligand-to-metal charge transfer in the overall thermodynamic stability of the complexes. A detailed energy decomposition analysis combining the extended transition state with the natural orbitals chemical valence method reveals an enhancement of the covalency upon switching to the soft-hard donor ligand because of the different nature of the metal-ligand interaction. The ligand L predominantly binds the metal via pi donation, whereas the ligand LS prefers sigma donation. Molecular orbital and quantum theory of atoms in molecules analyses as well as a comparison to a simple model system show that the covalency occurs as a result of orbital mixing and is near-degeneracy-driven in nature. This enhanced covalency, however, fails to thermodynamically compensate for the loss of strong electrostatic interaction and thus does not lead to an additional stabilization of the metal-LS complexes.
机译:软助剂配体通常在化学相似的镧(III)上为阳光苷(III)提供更高的选择性,例如,在AM-III-EU-III对中。通常,这种选择性的起源与actinide-配体键合的增加的共价增加。然而,共价和离子选择性之间的关系尚未达到一般共识。此外,目前还不清楚增强的共价是否导致复合物的热力学稳定。使用相对论的密度函数理论,我们通过分析了从硬体配体与混合软硬的单独的金属 - 配体相互作用的细微变化来解决了这些突出问题。 AM3 +和EU3 +络合结构和结合结构的本比较研究与3,4,3-Li(1,2-Hopo)(L)及其混合供体变体(LS)显示硫作为a软供体进入金属配位球体,实际上将AM3 +选择性注入到其他非选择性配体L中,但也导致金属结合Gibbs的无效能量的显着降低。自然人口分析,电荷分解分析,其扩展版本指向配体 - 金属电荷转移在复合物的总热力学稳定性中的关键作用。将延伸的过渡状态与天然轨道化学价法相结合的详细能量分解分析揭示了由于金属 - 配体相互作用的不同性质而在切换到软硬体配体时增强的共价。配体L主要通过PI捐赠结合金属,而配体LS更喜欢Sigma捐赠。分子轨道和量子原子的分子分析以及与简单模型系统的比较表明,由于轨道混合而发生共价,并且在自然界中接近退化。然而,这种增强的共价不能热力地补偿强静电相互作用的损失,因此不会导致金属-LS配合物的额外稳定。

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