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Electronic structure analysis of multistate reactivity in transition metal catalyzed reactions: the case of C-H bond activation by non-heme iron(iv)-oxo cores

机译:过渡金属催化反应中多态反应性的电子结构分析:非血红素铁(iv)-氧代核活化C-H键的情况

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摘要

This perspective discusses the principles of the multistate scenario often encountered in transition metal catalyzed reactions, and is organized as follows. First, several important theoretical concepts (physical versus formal oxidation states, orbital interactions, use of (spin) natural and corresponding orbitals, exchange enhanced reactivity and the connection between valence bond and molecular orbital based electronic structure analysis) are presented. These concepts are then used to analyze the electronic structure changes occurring in the reaction of C-H bond oxidation by Fe_(IV)oxo species. The analysis reveals that the energy separation and the overlap between the electron donating orbitals and electron accepting orbitals of the Fe_(IV)oxo complexes dictate the reaction stereochemistry, and that the manner in which the exchange interaction changes depends on the identity of these orbitals. The electronic reorganization of the Fe_(IV)oxo species during the reaction is thoroughly analyzed and it is shown that the Fe~(IV)oxo reactant develops oxyl radical character, which interacts effectively with the σ_(CH) orbital of the alkane. The factors that determine the energy barrier for the reaction are discussed in terms of molecular orbital and valence bond concepts.
机译:该观点讨论了过渡金属催化反应中经常遇到的多态方案的原理,其组织如下。首先,提出了几个重要的理论概念(物理相对于形式上的氧化态,轨道相互作用,(自旋的)自然和相应轨道的使用,交换增强的反应性以及价键与基于分子轨道的电子结构分析之间的联系)。然后将这些概念用于分析Fe_(IV)oxo物种在C-H键氧化反应中发生的电子结构变化。分析表明,Fe_(IV)氧杂配合物的能量分离和给电子轨道与受电子轨道之间的重叠决定了反应的立体化学,并且交换相互作用改变的方式取决于这些轨道的身份。对Fe_(IV)oxo物种在反应过程中的电子重组进行了彻底分析,结果表明Fe〜(IV)oxo反应物具有羟基自由基特征,可与烷烃的σ_(CH)轨道有效相互作用。根据分子轨道和价键概念讨论了决定反应能垒的因素。

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