Suppr超能文献

低自旋FeIV=O配合物的光谱和量子化学研究:Fe-O键及其对反应活性的贡献。

Spectroscopic and quantum chemical studies on low-spin FeIV=O complexes: Fe-O bonding and its contributions to reactivity.

作者信息

Decker Andrea, Rohde Jan-Uwe, Klinker Eric J, Wong Shaun D, Que Lawrence, Solomon Edward I

机构信息

Department of Chemistry, Stanford University, Stanford, California 94305, USA.

出版信息

J Am Chem Soc. 2007 Dec 26;129(51):15983-96. doi: 10.1021/ja074900s. Epub 2007 Dec 5.

Abstract

High-valent FeIV=O species are key intermediates in the catalytic cycles of many mononuclear non-heme iron enzymes and have been structurally defined in model systems. Variable-temperature magnetic circular dichroism (VT-MCD) spectroscopy has been used to evaluate the electronic structures and in particular the Fe-O bonds of three FeIV=O (S = 1) model complexes, [FeIV(O)(TMC)(NCMe)]2+, [FeIV(O)(TMC)(OC(O)CF3)]+, and [FeIV(O)(N4Py)]2+. These complexes are characterized by their strong and covalent Fe-O pi-bonds. The MCD spectra show a vibronic progression in the nonbonding --> pi* excited state, providing the Fe-O stretching frequency and the Fe-O bond length in this excited state and quantifying the pi-contribution to the total Fe-O bond. Correlation of these experimental data to reactivity shows that the [FeIV(O)(N4Py)]2+ complex, with the highest reactivity toward hydrogen-atom abstraction among the three, has the strongest Fe-O pi-bond. Density functional calculations were correlated to the data and support the experimental analysis. The strength and covalency of the Fe-O pi-bond result in high oxygen character in the important frontier molecular orbitals (FMOs) for this reaction, the unoccupied beta-spin d(xz/yz) orbitals, that activates these for electrophilic attack. An extension to biologically relevant FeIV=O (S = 2) enzyme intermediates shows that these can perform electrophilic attack reactions along the same mechanistic pathway (pi-FMO pathway) with similar reactivity but also have an additional reaction channel involving the unoccupied alpha-spin d(z2) orbital (sigma-FMO pathway). These studies experimentally probe the FMOs involved in the reactivity of FeIV=O (S = 1) model complexes resulting in a detailed understanding of the Fe-O bond and its contributions to reactivity.

摘要

高价FeIV=O物种是许多单核非血红素铁酶催化循环中的关键中间体,并且已在模型体系中得到结构表征。变温磁圆二色性(VT-MCD)光谱已被用于评估三种FeIV=O(S = 1)模型配合物[FeIV(O)(TMC)(NCMe)]2+、[FeIV(O)(TMC)(OC(O)CF3)]+和[FeIV(O)(N4Py)]2+的电子结构,尤其是Fe-O键。这些配合物的特征在于其强共价Fe-O π键。MCD光谱显示了非键态→π*激发态的振动进展,给出了该激发态下的Fe-O伸缩频率和Fe-O键长,并量化了π键对总Fe-O键的贡献。这些实验数据与反应活性的相关性表明,在这三种配合物中对氢原子夺取反应活性最高的[FeIV(O)(N4Py)]2+配合物具有最强的Fe-O π键。密度泛函计算与数据相关并支持实验分析。Fe-O π键的强度和共价性导致该反应重要前沿分子轨道(FMOs)中具有高氧特征,即未占据的β自旋d(xz/yz)轨道,从而激活这些轨道进行亲电攻击。对生物相关的FeIV=O(S = 2)酶中间体的扩展研究表明,它们可以沿着相同的反应机理途径(π-FMO途径)进行亲电攻击反应,具有相似的反应活性,但也有一个涉及未占据的α自旋d(z2)轨道的额外反应通道(σ-FMO途径)。这些研究通过实验探测了参与FeIV=O(S = 1)模型配合物反应活性的FMOs,从而详细了解了Fe-O键及其对反应活性的贡献。

相似文献

引用本文的文献

本文引用的文献

9

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验