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[Fe2O2(5-Et3-TPA)2]3+的光谱研究:Fe2O2菱形核的性质及其与高价双核非血红素酶中间体的可能关联

Spectroscopic study of [Fe2O2(5-Et3-TPA)2]3+: nature of the Fe2O2 diamond core and its possible relevance to high-valent binuclear non-heme enzyme intermediates.

作者信息

Skulan Andrew J, Hanson Melissa A, Hsu Hua-Fen, 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. 2003 Jun 18;125(24):7344-56. doi: 10.1021/ja021137n.

DOI:10.1021/ja021137n
PMID:12797809
Abstract

The spectroscopic properties and electronic structure of an Fe(2)(III,IV) bis-mu-oxo complex, Fe(2)O(2)(5-Et(3)-TPA)(2)(3) where 5-Et(3)-TPA = tris(5-ethyl-2-pyridylmethyl)amine, are explored to determine the molecular origins of the unique electronic and geometric features of the Fe(2)O(2) diamond core. Low-temperature magnetic circular dichroism (MCD) allows the two features in the broad absorption envelope (4000-30000 cm(-)(1)) to be resolved into 13 transitions. Their C/D ratios and transition polarizations from variable temperature-variable field MCD saturation behavior indicate that these divide into three types of electronic transitions; t(2) --> t(2) involving excitations between metal-based orbitals with pi Fe-O overlap (4000-10000 cm(-)(1)), t(2)/t(2) --> e involving excitations to metal-based orbitals with sigma Fe-O overlap (12500-17000 cm(-)(1)) and LMCT (17000-30000 cm(-)(1)) and allows transition assignments and calibration of density functional calculations. Resonance Raman profiles show the C(2)(h)() geometric distortion of the Fe(2)O(2) core results in different stretching force constants for adjacent Fe-O bonds (k(str)(Fe-O(long)) = 1.66 and k(str)(Fe-O(short)) = 2.72 mdyn/A) and a small ( approximately 20%) difference in bond strength between adjacent Fe-O bonds. The three singly occupied pi-metal-based orbitals form strong superexchange pathways which lead to the valence delocalization and the S = (3)/(2) ground state. These orbitals are key to the observed reactivity of this complex as they overlap with the substrate C-H bonding orbital in the best trajectory for hydrogen atom abstraction. The electronic structure implications of these results for the high-valent enzyme intermediates X and Q are discussed.

摘要

对一种Fe(2)(III,IV)双-μ-氧配合物Fe(2)O(2)(5-Et(3)-TPA)(2)(3)(其中5-Et(3)-TPA = 三(5-乙基-2-吡啶甲基)胺)的光谱性质和电子结构进行了研究,以确定Fe(2)O(2)菱形核心独特的电子和几何特征的分子起源。低温磁圆二色性(MCD)使得宽吸收包络(4000 - 30000 cm(-1))中的两个特征可分解为13个跃迁。它们的C/D比以及变温-变场MCD饱和行为的跃迁极化表明,这些跃迁可分为三种类型的电子跃迁;t(2)→t(2)涉及具有π Fe - O重叠的金属基轨道之间的激发(4000 - 10000 cm(-1)),t(2)/t(2)→e涉及到具有σ Fe - O重叠的金属基轨道的激发(12500 - 17000 cm(-1))以及配体到金属的电荷转移(17000 - 30000 cm(-1)),并允许进行跃迁归属和密度泛函计算的校准。共振拉曼光谱表明,Fe(2)O(2)核心的C(2)(h)几何畸变导致相邻Fe - O键具有不同的拉伸力常数(k(str)(Fe - O(long)) = 1.66且k(str)(Fe - O(short)) = 2.72 mdyn/A),并且相邻Fe - O键之间的键强度存在小的(约20%)差异。三个单占据的π-金属基轨道形成了强的超交换途径,这导致了价态离域和S = (3)/(2)基态。这些轨道对于该配合物观察到的反应性至关重要,因为它们在氢原子提取的最佳轨迹中与底物C - H键轨道重叠。讨论了这些结果对高价酶中间体X和Q的电子结构的影响。

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