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首页> 外文期刊>The journal of physical chemistry, A. Molecules, spectroscopy, kinetics, environment, & general theory >Determining the Impact of Ligand and Alkene Substituents on Bonding in Gold(I)-Alkene Complexes Supported by N-Heterocyclic Carbenes: A Computational Study
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Determining the Impact of Ligand and Alkene Substituents on Bonding in Gold(I)-Alkene Complexes Supported by N-Heterocyclic Carbenes: A Computational Study

机译:确定配体和烯烃取代基对N-杂环卡宾支持的金(I)-烯烃配合物中键合的影响:计算研究

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摘要

The nature of the gold(I)-alkene bond in [(NHC)Au(alkene)](+) complexes (where NHC is the N-heterocycliccarbene 1,3-bis(2,6-dimethylphenyl)imidazole-2-ylidine and its derivatives) has been studied using density functional theory. By utilization of a series of electron withdrawing and electron-donating substituents ranging from -NO2 to -NH2, an examination of substituent effects has been undertaken with 4-substituted NHC ligands, monosubstituted ethylene derivatives, and 4-substituted styrene derivatives. Natural population, natural bond orbital (NBO), molecular orbital, and bond energy decomposition analysis (EDA) methods have been used to quantify a number of important parameters, including the charge of the coordinated alkenes and the magnitude of alkene ->[(NHC)Au](+) and [(NHC)Au](+)-> alkene electron donation. EDA methods have also been used to quantify the strength of the [(NHC)Au](+)-(alkene) bond and the impact of both ligand and alkene substitution on different components of the interaction, including polarization, orbital, electrostatic, and Pauli repulsive contributions. Finally, molecular orbital analysis has been used to understand the activation of the alkenes in terms of orbital composition and stabilization within the [(NHC)Au(alkene)(+) complexes relative to the free alkenes. These results provide important insight into the fundamental nature of gold(I)-alkene bonding and the impact of both ligand and alkene substitution on the electronic structure of these complexes.
机译:[(NHC)Au(链烯)](+)配合物中金(I)-链烯键的性质(其中NHC是N-杂环卡宾1,3-双(2,6-二甲基苯基)咪唑-2-基吡啶及其衍生物)已使用密度泛函理论进行了研究。通过利用一系列从-NO 2到-NH 2的吸电子和供电子取代基,对4-取代的NHC配体,单取代的乙烯衍生物和4-取代的苯乙烯衍生物的取代基效果进行了研究。自然种群,自然键轨道(NBO),分子轨道和键能量分解分析(EDA)方法已用于量化许多重要参数,包括配位烯烃的电荷和烯烃的数量-> [(NHC) )Au](+)和[(NHC)Au](+)->烯烃电子给体。 EDA方法也已用于量化[(NHC)Au](+)-(烯烃)键的强度以及配体和烯烃取代基对相互作用的不同组成部分的影响,包括极化,轨道,静电和保利令人反感。最后,分子轨道分析已被用来了解烯烃的活化,其相对于游离烯烃而言,其在轨道组成和[(NHC)Au(烯烃)(+)配合物内的稳定性方面均如此。这些结果提供了重要的见解,金(I)-烯烃键的基本性质以及配体和烯烃的取代对这些配合物的电子结构的影响。

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