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锕系元素配合物的密度与波函数分析:模糊原子、分子中的原子、马利肯、洛丁和自然布居分析能告诉我们什么?

Density and wave function analysis of actinide complexes: what can fuzzy atom, atoms-in-molecules, Mulliken, Lowdin, and natural population analysis tell us?

作者信息

Clark Aurora E, Sonnenberg Jason L, Hay P Jeffrey, Martin Richard L

机构信息

Los Alamos National Laboratory, Theoretical Division, Mail Stop B268, Los Alamos, New Mexico 87545, USA.

出版信息

J Chem Phys. 2004 Aug 8;121(6):2563-70. doi: 10.1063/1.1766292.

Abstract

Recent advances in computational methods have made it possible to calculate the wave functions for a wide variety of simple actinide complexes. Equally important is the ability to analyze the information contained therein and produce a chemically meaningful understanding of the electronic structure. Yet the performance of the most common wave function analyses for the calculation of atomic charge and bond order has not been thoroughly investigated for actinide systems. This is particularly relevant because the calculation of charge and bond order even in transition metal complexes is known to be fraught with difficulty. Here we use Mulliken, Lowdin, natural population analysis, atoms-in-molecules (AIM), and fuzzy atom techniques to determine the charges and bond orders of UO(2)(2+), PuO(2)(2+), UO(2), UO(2)Cl(4)(2-), UO(2)(CO)(5)(2+), UO(2)(CO)(4)(2+), UO(2)(CN)(5)(3-), UO(2)(CN)(4)(2-), UO(2)(OH)(5)(3-), and UO(2)(OH)(4)(2-). This series exhibits a clear experimental and computational trend in bond lengths and vibrational frequencies. The results indicate that Mulliken and Lowdin populations and bond orders are unreliable for the actinyls. Natural population analysis performs well after modification of the partitioning of atomic orbitals to include the 6d in the valence space. The AIM topological partitioning is insensitive to the electron donating ability of the equatorial ligands and the relative atomic volume of the formally U(VI) center is counterintuitively larger than that of O(2-) in the UO(2)(2+) core. Lastly, the calibrated fuzzy atom method yields reasonable bond orders for the actinyls at significantly reduced computational cost relative to the AIM analysis.

摘要

计算方法的最新进展使得计算各种简单锕系元素配合物的波函数成为可能。同样重要的是能够分析其中包含的信息,并对电子结构产生具有化学意义的理解。然而,对于锕系元素体系,用于计算原子电荷和键级的最常见波函数分析的性能尚未得到充分研究。这一点尤为重要,因为即使在过渡金属配合物中,电荷和键级的计算也已知充满困难。在这里,我们使用穆利肯(Mulliken)、洛丁(Lowdin)、自然布居分析、分子中的原子(AIM)和模糊原子技术来确定UO₂²⁺、PuO₂²⁺、UO₂、UO₂Cl₄²⁻、UO₂(CO)₅²⁺、UO₂(CO)₄²⁺、UO₂(CN)₅³⁻、UO₂(CN)₄²⁻、UO₂(OH)₅³⁻和UO₂(OH)₄²⁻的电荷和键级。该系列在键长和振动频率方面呈现出明显的实验和计算趋势。结果表明,穆利肯和洛丁布居数及键级对于酰基铀酰是不可靠的。在修改原子轨道的划分以将6d纳入价层空间后,自然布居分析表现良好。AIM拓扑划分对赤道配体的给电子能力不敏感,并且形式上U(VI)中心的相对原子体积比UO₂²⁺核心中O²⁻的相对原子体积大,这与直觉相反。最后,校准后的模糊原子方法相对于AIM分析以显著降低的计算成本为酰基铀酰产生了合理的键级。

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