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Nonlinear d10-ML2 Transition-Metal Complexes

机译:非线性d10-ML2过渡金属配合物

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摘要

We have investigated the molecular geometries of a series of dicoordinated d10-transition-metal complexes ML2 (M=Co, Rh, Ir, Ni, Pd, Pt, Cu+, Ag+, Au+; L=NH3, PH3, CO) using relativistic density functional theory (DFT) at ZORA-BLYP/TZ2P. Not all complexes have the expected linear ligand–metal–ligand (L–M–L) angle: this angle varies from 180° to 128.6° as a function of the metal as well as the ligands. Our main objective is to present a detailed explanation why ML2 complexes can become bent. To this end, we have analyzed the bonding mechanism in ML2 as a function of the L–M–L angle using quantitative Kohn–Sham molecular orbital (MO) theory in combination with an energy decomposition analysis (EDA) scheme. The origin of bent L–M–L structures is π backdonation. In situations of strong π backdonation, smaller angles increase the overlap of the ligand’s acceptor orbital with a higher-energy donor orbital on the metal-ligand fragment, and therefore favor π backdonation, resulting in additional stabilization. The angle of the complexes thus depends on the balance between this additional stabilization and increased steric repulsion that occurs as the complexes are bent.
机译:我们研究了一系列双配位的d 10 -过渡金属配合物ML2(M = Co -,Rh -,Ir -,Ni,Pd,Pt,Cu + ,Ag + ,Au + ; L = NH3,PH3 (CO),使用ZORA-BLYP / TZ2P的相对论密度泛函理论(DFT)。并非所有的配合物都具有预期的线性配体-金属-配体(L–M–L)角:该角从180°到128.6°随金属以及配体的变化而变化。我们的主要目的是详细解释ML2复合物为何会弯曲。为此,我们使用定量Kohn-Sham分子轨道(MO)理论与能量分解分析(EDA)方案相结合,分析了ML2中键合机制与L–M–L角的关系。弯曲的L–M–L结构的起源是π回交。在强π背离的情况下,较小的角度会增加配体的受体轨道与金属配体片段上较高能量的供体轨道的重叠,因此有利于π背离,从而获得额外的稳定性。因此,配合物的角度取决于该另外的稳定性和在配合物弯曲时发生的增加的空间排斥之间的平衡。

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