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Nonheme oxoiron(iv) complexes of pentadentate N5 ligands: Spectroscopy, electrochemistry, and oxidative reactivity

机译:五齿N5配体的非血红素氧铁(iv)配合物:光谱学,电化学和氧化反应性

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摘要

Oxoiron(iv) species have been found to act as the oxidants in the catalytic cycles of several mononuclear nonheme iron enzymes that activate dioxygen. To gain insight into the factors that govern the oxidative reactivity of such complexes, a series of five synthetic S = 1 [FeIV(O)(L N5)]2+ complexes has been characterized with respect to their spectroscopic and electrochemical properties as well as their relative abilities to carry out oxo transfer and hydrogen atom abstraction. The FeO units in these five complexes are supported by neutral pentadentate ligands having a combination of pyridine and tertiary amine donors but with different ligand frameworks. Characterization of the five complexes by X-ray absorption spectroscopy reveals FeO bonds of ca. 1.65 Å in length that give rise to the intense 1s → 3d pre-edge features indicative of iron centers with substantial deviation from centrosymmetry. Resonance Raman studies show that the five complexes exhibit ν(FeO) modes at 825-841 cm-1. Spectropotentiometric experiments in acetonitrile with 0.1 M water reveal that the supporting pentadentate ligands modulate the E1/2(iv/iii) redox potentials with values ranging from 0.83 to 1.23 V vs. Fc, providing the first electrochemical determination of the E1/2(iv/iii) redox potentials for a series of oxoiron(iv) complexes. The 0.4 V difference in potential may arise from differences in the relative number of pyridine and tertiary amine donors on the LN5 ligand and in the orientations of the pyridine donors relative to the FeO bond that are enforced by the ligand architecture. The rates of oxo-atom transfer (OAT) to thioanisole correlate linearly with the increase in the redox potentials, reflecting the relative electrophilicities of the oxoiron(iv) units. However this linear relationship does not extend to the rates of hydrogen-atom transfer (HAT) from 1,3-cyclohexadiene (CHD), 9,10-dihydroanthracene (DHA), and benzyl alcohol, suggesting that the HAT reactions are not governed by thermodynamics alone. This study represents the first investigation to compare the electrochemical and oxidative properties of a series of S = 1 FeIVO complexes with different ligand frameworks and sheds some light on the complexities of the reactivity of the oxoiron(iv) unit
机译:已发现氧代铁(iv)物种在几种激活双氧的单核非血红素铁酶的催化循环中充当氧化剂。为了深入了解控制此类配合物氧化反应性的因素,已对一系列五种合成的S = 1 [FeIV(O)(L N5)] 2+配合物进行了表征,涉及其光谱学和电化学性质以及它们进行羰基转移和氢原子提取的相对能力。这五个络合物中的FeO单元由具有吡啶和叔胺供体组合但具有不同配体骨架的中性五齿配体支撑。通过X射线吸收光谱对这5种配合物进行表征,发现大约有FeO键。长度为1.65Å,会产生强烈的1s→3d前边缘特征,表明铁心与中心对称性存在明显偏差。共振拉曼研究表明,这五个络合物在825-841 cm-1处显示ν(FeO)模。在乙腈中使用0.1 M水的分光光度法实验表明,支持的五齿配体可调节E1 / 2(iv / iii)氧化还原电位,相对于Fc的值在0.83至1.23 V之间,这是对E1 / 2(iv)的首次电化学测定/ iii)一系列氧化铁(iv)配合物的氧化还原电位。电位的0.4 V差异可能是由LN5配体上吡啶和叔胺供体的相对数量的差异以及配体结构所强制的吡啶供体相对于FeO键的方向的差异引起的。氧原子转移到硫代苯甲醚的速率与氧化还原电势的增加线性相关,反映了氧化铁(iv)单元的相对亲电性。但是,这种线性关系并没有扩展到1,3-环己二烯(CHD),9,10-二氢蒽(DHA)和苯甲醇的氢原子转移(HAT)速率,这表明HAT反应不受以下条件的控制:仅热力学。这项研究代表了首次研究,比较了具有不同配体骨架的一系列S = 1 FeIVO配合物的电化学和氧化性质,并揭示了氧代铁(iv)单元反应性的复杂性

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