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4f 和 5f 轨道在成键中的作用:磁化学、晶体场、密度泛函理论及多参考波函数研究

The roles of 4f- and 5f-orbitals in bonding: a magnetochemical, crystal field, density functional theory, and multi-reference wavefunction study.

作者信息

Lukens W W, Speldrich M, Yang P, Duignan T J, Autschbach J, Kögerler P

机构信息

Chemical Sciences Division, Lawrence Berkeley National Laboratory, Berkeley, CA, USA.

出版信息

Dalton Trans. 2016 Jul 28;45(28):11508-21. doi: 10.1039/c6dt00634e. Epub 2016 Jun 28.

Abstract

The electronic structures of 4f(3)/5f(3) Cp''3M and Cp''3M·alkylisocyanide complexes, where Cp'' is 1,3-bis-(trimethylsilyl)cyclopentadienyl, are explored with a focus on the splitting of the f-orbitals, which provides information about the strengths of the metal-ligand interactions. While the f-orbital splitting in many lanthanide complexes has been reported in detail, experimental determination of the f-orbital splitting in actinide complexes remains rare in systems other than halide and oxide compounds, since the experimental approach, crystal field analysis, is generally significantly more difficult for actinide complexes than for lanthanide complexes. In this study, a set of analogous neodymium(iii) and uranium(iii) tris-cyclopentadienyl complexes and their isocyanide adducts was characterized by electron paramagnetic resonance (EPR) spectroscopy and magnetic susceptibility. The crystal field model was parameterized by combined fitting of EPR and susceptibility data, yielding an accurate description of f-orbital splitting. The isocyanide derivatives were also studied using density functional theory, resulting in f-orbital splitting that is consistent with crystal field fitting, and by multi-reference wavefunction calculations that support the electronic structure analysis derived from the crystal-field calculations. The results highlight that the 5f-orbitals, but not the 4f-orbitals, are significantly involved in bonding to the isocyanide ligands. The main interaction between isocyanide ligand and the metal center is a σ-bond, with additional 5f to π* donation for the uranium complexes. While interaction with the isocyanide π*-orbitals lowers the energies of the 5fxz(2) and 5fyz(2)-orbitals, spin-orbit coupling greatly reduces the population of 5fxz(2) and 5fyz(2) in the ground state.

摘要

研究了4f(3)/5f(3) Cp''3M和Cp''3M·异腈配合物的电子结构,其中Cp''为1,3-双(三甲基硅基)环戊二烯基,重点关注f轨道的分裂,这提供了有关金属-配体相互作用强度的信息。虽然许多镧系配合物中的f轨道分裂已被详细报道,但除卤化物和氧化物化合物外,在其他体系中对锕系配合物中f轨道分裂的实验测定仍然很少,因为实验方法——晶体场分析——对锕系配合物来说通常比对镧系配合物困难得多。在本研究中,通过电子顺磁共振(EPR)光谱和磁化率对一组类似的钕(iii)和铀(iii)三茂基配合物及其异腈加合物进行了表征。通过EPR和磁化率数据的联合拟合对晶体场模型进行参数化,从而准确描述f轨道分裂。还使用密度泛函理论对异腈衍生物进行了研究,得到了与晶体场拟合一致的f轨道分裂结果,并通过多参考波函数计算支持了从晶体场计算得出的电子结构分析。结果表明,5f轨道而非4f轨道在与异腈配体的键合中起重要作用。异腈配体与金属中心之间的主要相互作用是σ键,对于铀配合物还有额外的5f到π的电子给予。虽然与异腈π轨道的相互作用降低了5fxz(2)和5fyz(2)轨道的能量,但自旋-轨道耦合大大减少了基态中5fxz(2)和5fyz(2)的占据数。

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