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首页> 外文期刊>Inorganic Chemistry: A Research Journal that Includes Bioinorganic, Catalytic, Organometallic, Solid-State, and Synthetic Chemistry and Reaction Dynamics >Intramolecular Oxyl Radical Coupling Promotes O-O Bond Formation in a Homogeneous Mononuclear Mn-based Water Oxidation Catalyst: A Computational Mechanistic Investigation
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Intramolecular Oxyl Radical Coupling Promotes O-O Bond Formation in a Homogeneous Mononuclear Mn-based Water Oxidation Catalyst: A Computational Mechanistic Investigation

机译:分子内氧基自由基偶联促进均匀单核MN水氧化催化剂中的O-O键形成:计算机制调查

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摘要

The mechanism of water oxidation performed by a recently discovered manganese pyridinophane catalyst [Mn((Py2NBu2)-Bu-t)(H2O)(2)](2+) is studied using density functional theory methods. A complete catalytic cycle is constructed and the catalytically active species is identified to consist of a Mnv- bis(oxo) moiety that is generated from the resting state by a series of proton-coupled electron transfer reactions. Whereas the electronic ground state of this key intermediate is found to be a triplet, the most favorable pathway for O-O bond formation is found on the quintet potential energy surface and involves an intramolecular coupling of two oxyl radicals with opposite spins bound to the Mn-center that adopts an electronic structure most consistent formally with a high-spin Mnill ion. Therefore, the thermally accessible high-spin quintet state that constitutes a typical and innate property of a first-row transition metal center plays a critical role for catalysis. It enables facile electron transfer between the oxo moieties and the Mn-center and promotes O-O bond formation via a radical coupling reaction with a calculated reaction barrier of only 14.7 kcal mol(-1). This mechanism of O-O coupling is unprecedented and provides a novel possible pathway to coupling two oxygen atoms bound to a single metal site.
机译:使用密度官能理论方法研究了最近发现的锰吡啶烷烷催化剂[Mn((py2NBU2 -Bu-T)(2 +)的水氧化机理[Mn((py2NBU2 -Bu-T)(2 +)。构建完全催化循环,鉴定催化活性物质由由一系列质子偶联的电子转移反应从静止状态产生的MNV-BIS(Oxo)部分组成。虽然发现该关键中间体的电子接地状态是三重态,但在Quintet势能表面上发现了OO键形成的最有利的途径,并且涉及两个氧基自由基的分子内耦合,其具有相反的旋转与Mn-Center结合通过高旋转Mnill离子,采用最正式一致的电子结构。因此,构成第一行过渡金属中心的典型和先天特性的可热访问的高旋转Quintet状态在催化作用中起着关键作用。它使得在Oxo部分和Mn-Centa之间的体内传递能够通过基团偶联反应促进O-O键形成,其仅具有14.7kcal摩尔(-1)的计算的反应屏障。 O-O偶联的这种机制是前所未有的,并提供一种新的可能途径,用于偶联与单个金属位点结合的两个氧原子。

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