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异多金属羰基配合物中的键合情况。

The bonding situation in heteromultimetallic carbonyl complexes.

作者信息

Ortolan Alexandre O, Caramori Giovanni F, Parreira Renato L T, Orenha Renato P, Muñoz-Castro Alvaro, Frenking Gernot

机构信息

Departamento de Química, Universidade Federal de Santa Catarina, Campus Universitário Trindade, CP 476, Florianópolis, SC 88040-900, Brazil.

出版信息

Dalton Trans. 2020 Dec 8;49(46):16762-16771. doi: 10.1039/d0dt02916e.

DOI:10.1039/d0dt02916e
PMID:33166376
Abstract

The synthesis and characterization of heteromultimetallic complexes has been one of the biggest challenges faced by inorganic chemists in the last few years. Here, the physical nature behind the relative stability of tri-heteronuclear complexes, involving the [M(PR3)]+ (M = Au(i), Ag(i) and Cu(i); and R = Ph and H) cation bridged by the [Fe(CO)4]2- anion, at the relativistic DFT-D3 level of theory is presented. Although the synthetic route to afford the [Fe(CO)4(AuPPh3)2] complex has been known for a long time, information about its copper and silver counterparts is scarce. The bonding situation is addressed via Kohn-Sham molecular orbitals coupled with a canonical energy decomposition analysis as the primary technique. The results show that complexes whose metal portion M-Fe-M is bent are more stable than linear ones. This stems from the dispersive interactions between the phenyl groups, but this also supports the presence of aurophilic d10-d10 interactions. The bonding between the [Fe(CO)4]2- and [Au-PPh3]+ fragments has a chiefly electrostatic character, but orbital interactions also represent a non-negligible role, as evidenced by the presence of : (i) σ-donation from the iron-carbonyl groups to the metal-phosphorus fragment; (ii) small π-donation from the metal to the iron center; and (iii) inner fragment polarization. The description of the metal-metal bonding situation in these complexes provides valuable information, useful to guide the synthesis of unprecedented multimetallic complexes containing coinage metals and other transition metals.

摘要

在过去几年中,异多核金属配合物的合成与表征一直是无机化学家面临的最大挑战之一。本文在相对论密度泛函理论(DFT-D3)水平上,阐述了由[Fe(CO)4]2-阴离子桥联的三异核配合物(涉及[M(PR3)]+阳离子,其中M = Au(i)、Ag(i)和Cu(i);R = Ph和H)相对稳定性背后的物理本质。尽管制备[Fe(CO)4(AuPPh3)2]配合物的合成路线早已为人所知,但关于其铜和银类似物的信息却很少。通过将Kohn-Sham分子轨道与作为主要技术的正则能量分解分析相结合来探讨键合情况。结果表明,金属部分M-Fe-M呈弯曲状的配合物比线性配合物更稳定。这源于苯基之间的色散相互作用,但这也支持了亲金d10-d10相互作用的存在。[Fe(CO)4]2-和[Au-PPh3]+片段之间的键合主要具有静电性质,但轨道相互作用也起着不可忽视的作用,这表现为:(i) 从铁羰基向金属-磷片段的σ-给予;(ii) 从金属向铁中心的小π-给予;以及(iii) 内部分子极化。对这些配合物中金属-金属键合情况的描述提供了有价值的信息,有助于指导合成前所未有的包含货币金属和其他过渡金属的多金属配合物。

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