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Trends in Substrate Hydroxylation Reactions by Heme and Nonheme lron(IV)-Oxo Oxidants Give Correlations between Intrinsic Properties of the Oxidant with Barrier Height

机译:血红素和非血红素(IV)-氧代氧化剂在底物羟基化反应中的趋势给出了氧化剂固有性质与势垒高度之间的关系

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摘要

lron(IV)-oxo species have been characterized in several nonheme enzymes and biomimetic systems and are efficient oxidants of aliphatic hydroxylation reactions. However, there appears to be a large variation in substrate hydroxylation ability by different iron(IV)-oxo oxidants due to the effect of the ligands bound to the metal. In this work, we have studied these indirect effects of ligands perpendicular (cis or equatorial) and opposite (trans or axial) to the iron(IV)-oxo group in heme and nonheme oxidants on the oxygenation capability of the oxidant. To this end, we have done a series of density functional theory calculations on the hydrogen atom abstraction of propene by a range of different iron(IV)-oxo oxidants that include heme and nonheme iron(IV)-oxo oxidants. We show that the hydrogen atom abstraction barrier of substrate hydroxylation correlates linearly with the strength of the Fe(III)O-H bond that is formed, i.e., BDEoh, and that this value ranges by at least 20 kcal mol~(-1) dependent on the cis- and trans-ligands attached to the metal. Thus, our studies show that ligands bound to the metal are noninnocent and influence the catalytic properties of the metal-oxo group dramatically due to involvement into the high-lying occupied and virtual orbitals. A general valence bond curve crossing model is set up that explains how the rate constant of hydrogen atom abstraction is proportional to the difference in energy of the C-H bond of the substrate that is broken and the O-H bond of the Fe(III)O-H complex that is formed, i.e., proportional to BDE_(CH) - BDE_(OH) or the reaction enthalpy. In addition, we show a correlation between the polarizability change and barrier height for the hydrogen atom abstraction reaction.
机译:铁(IV)-氧代物种已在几种非血红素酶和仿生系统中得到表征,并且是脂肪族羟基化反应的有效氧化剂。然而,由于与金属结合的配体的作用,不同的铁(IV)-氧代氧化剂在底物羟基化能力上似乎有很大的变化。在这项工作中,我们研究了血红素和非血红素氧化剂中与铁(IV)-氧代基垂直(顺式或赤道)和相反(反式或轴向)配体的间接氧化作用。为此,我们对一系列不同的铁(IV)-氧代氧化剂(包括血红素和非血红素铁(IV)-氧代氧化剂)对丙烯的氢原子抽象进行了一系列密度泛函理论计算。我们表明底物羟基化的氢原子抽象势垒与所形成的Fe(III)OH键的强度即BDEoh线性相关,并且该值的范围至少为20 kcal mol〜(-1),取决于与金属连接的顺式和反式配体。因此,我们的研究表明,与金属键合的配体是无毒的,并且由于参与了高位占据和虚拟的轨道,因此极大地影响了金属-氧代基团的催化性能。建立了一个一般的价键曲线交叉模型,该模型解释了氢原子提取的速率常数如何与被破坏的底物的CH键的能量和Fe(III)OH络合物的OH键的能量差成比例形成,即与BDE_(CH)-BDE_(OH)或反应焓成比例。此外,我们显示了极化率变化与氢原子提取反应的势垒高度之间的相关性。

著录项

  • 来源
    《Journal of the American Chemical Society》 |2010年第3期|1087-1097|共11页
  • 作者

    Sam P. de Visser;

  • 作者单位

    Manchester Interdisciplinary Biocenter and School of Chemical Engineering and Analytical Science, University of Manchester, 131 Princess Street, Manchester M1 7DN, United Kingdom;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
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