首页> 外文期刊>Dalton transactions: An international journal of inorganic chemistry >Mechanistic insight into oxygen atom transfer reactions by mononuclear manganese(iv)-oxo adducts
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Mechanistic insight into oxygen atom transfer reactions by mononuclear manganese(iv)-oxo adducts

机译:通过单核锰(IV) - 过氧加合物融入氧原子转移反应的机械洞察

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摘要

High-valent metal-oxo intermediates are well known to facilitate oxygen-atom transfer (OAT) reactions both in biological and synthetic systems. These reactions can occur by a single-step OAT mechanism or by a stepwise process initiated by rate-limiting electron transfer between the substrate and the metal-oxo unit. Several recent reports have demonstrated that changes in the metal reduction potential, caused by the addition of Bronsted or Lewis acids, cause a change in sulfoxidation mechanism of Mn-IV-oxo complexes from single-step OAT to the multistep process. In this work, we sought to determine if ca. 4000-fold rate variations observed for sulfoxidation reactions by a series of Mn-IV-oxo complexes supported by neutral, pentadentate ligands could arise from a change in sulfoxidation mechanism. We examined the basis for this rate variation by performing variable-temperature kinetic studies to determine activation parameters for the reactions of the Mn-IV-oxo complexes with thioanisole. These data reveal activation barriers predominantly controlled by activation enthalpy, with unexpectedly small contributions from the activation entropy. We also compared the reactivity of these Mn-IV-oxo complexes by a Hammett analysis using para-substituted thioanisole derivatives. Similar Hammett rho values from this analysis suggest a common sulfoxidation mechanism for these complexes. Because the rates of oxidation of the para-substituted thioanisole derivatives by the Mn-IV-oxo adducts are much faster than that expected from the Marcus theory of outer-sphere electron-transfer, we conclude that these reactions proceed by a single-step OAT mechanism. Thus, large variations in sulfoxidation by this series of Mn-IV-oxo centers occur without a change in reaction mechanism.
机译:众所周知,高价金属氧代中间体在生物和合成系统中促进氧原子转移(OAT)反应。这些反应可以通过单步OAT机制发生,也可以通过基板和金属氧单元之间的限速电子转移启动的分步过程发生。最近的几份报告表明,由于添加了Bronsted酸或Lewis酸,金属还原电位发生变化,导致Mn-IV-oxo络合物的硫氧化机制从单步氧化转变为多步氧化。在这项工作中,我们试图确定由中性五齿配体支持的一系列Mn-IV-oxo络合物在硫氧化反应中观察到的约4000倍速率变化是否可能来自硫氧化机制的变化。我们通过进行变温动力学研究来确定Mn-IV-oxo络合物与硫代苯甲醚反应的活化参数,从而检验了这种速率变化的基础。这些数据显示,活化势垒主要由活化焓控制,活化熵的贡献出人意料地小。我们还通过使用对取代硫苯甲醚衍生物的Hammett分析比较了这些Mn-IV-oxo络合物的反应性。该分析得出的类似Hammett rho值表明这些配合物具有共同的硫氧化机制。由于Mn-IV-oxo加合物氧化对取代硫苯甲醚衍生物的速度远快于马库斯外球电子转移理论所预期的速度,因此我们得出结论,这些反应是通过单步OAT机制进行的。因此,在反应机理没有改变的情况下,这一系列Mn IV氧中心的硫氧化发生了很大的变化。

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