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首页> 外文期刊>Chemistry - A European Journal >Mechanistic Insights into the cis–trans Isomerization of Ruthenium Complexes Relevant to Catalysis of Olefin Metathesis
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Mechanistic Insights into the cis–trans Isomerization of Ruthenium Complexes Relevant to Catalysis of Olefin Metathesis

机译:与烯烃复分解催化有关的钌配合物顺-反异构化的机理研究

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The mechanism of the trans to cis isomerization in Ru complexes with a chelating alkylidene group has been investigated by using a combined theoretical and experimental approach. Static DFT calculations suggest that a concerted single-step mechanism is slightly favored over a multistep mechanism, which would require dissociation of one of the ligands from the Ru center. This hypothesis is supported by analysis of the experimental kinetics of isomerization, as followed by 1H NMR spectroscopy. DFT molecular dynamics simulations revealed that the variation of geometrical parameters around the Ru center in the concerted mechanism is highly uncorrelated; the mechanism actually begins with the transformation of the square-pyramidal trans isomer, with the RuCHR bond in the apical position, into a transition state that resembles a metastable square pyramidal complex with a Cl atom in the apical position. This high-energy structure collapses into the cis isomer. Then, the influence of the N-heterocyclic carbene ligand, the halogen, and the chelating alkylidene group on the relative stability of the cis and trans isomers, as well as on the energy barrier separating them, was investigated with static calculations. Finally, we investigated the interconversion between cis and trans isomers of the species involved in the catalytic cycle of olefin metathesis; we characterized an unprecedented square-pyramidal metallacycle with the N-heterocyclic carbene ligand in the apical position. Our analysis, which is relevant to the exchange of equatorial ligands in other square pyramidal complexes, presents evidence for a remarkable flexibility well beyond the simple cis–trans isomerization of these Ru complexes.
机译:通过使用理论和实验相结合的方法,研究了具有螯合亚烷基的Ru络合物中反式至顺式异构化的机理。静态DFT计算表明,协调一致的单步机制比多步机制略受青睐,这需要从Ru中心解离配体之一。通过对异构化的实验动力学进行分析,随后进行 1 H NMR光谱分析,可以支持该假设。 DFT分子动力学模拟表明,协同机理中Ru中心周围几何参数的变化是高度不相关的。该机理实际上始于将RuCHR键位于顶端位置的方形-金字塔形反式异构体转变为类似于在顶端位置具有Cl原子的亚稳方形金字塔络合物的过渡态。这种高能结构塌陷成顺式异构体。然后,通过静态计算研究了N-杂环卡宾配体,卤素和螯合亚烷基对顺式和反式异构体的相对稳定性以及分离它们的能垒的影响。最后,我们研究了参与烯烃复分解催化循环的物种的顺式和反式异构体之间的相互转化。我们表征了一个空前的正方形-金字塔形金属环,其顶端具有N-杂环卡宾配体。我们的分析与其他方形金字塔形络合物中的赤道配体的交换有关,它提供了超越这些Ru络合物简单的顺式-反式异构化的显着灵活性的证据。

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