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铁(IV)=O活性位点中的激发态势能面及其相互作用。

Excited state potential energy surfaces and their interactions in Fe(IV)=O active sites.

作者信息

Srnec Martin, Wong Shaun D, Solomon Edward I

机构信息

Department of Chemistry, Stanford University, Stanford, CA 94305-5080, USA.

出版信息

Dalton Trans. 2014 Dec 21;43(47):17567-77. doi: 10.1039/c4dt01366b.

Abstract

The non-heme ferryl active sites are of significant interest for their application in biomedical and green catalysis. These sites have been shown to have an S = 1 or S = 2 ground spin state; the latter is functional in biology. Low-temperature magnetic circular dichroism (LT MCD) spectroscopy probes the nature of the excited states in these species including ligand-field (LF) states that are otherwise difficult to study by other spectroscopies. In particular, the temperature dependences of MCD features enable their unambiguous assignment and thus determination of the low-lying excited states in two prototypical S = 1 and S = 2 NHFe(IV)[double bond, length as m-dash]O complexes. Furthermore, some MCD bands exhibit vibronic structures that allow mapping of excited-state interactions and their effects on the potential energy surfaces (PESs). For the S = 2 species, there is also an unusual spectral feature in both near-infrared absorption and MCD spectra - Fano antiresonance (dip in Abs) and Fano resonance (sharp peak in MCD) that indicates the weak spin-orbit coupling of an S = 1 state with the S = 2 LF state. These experimental data are correlated with quantum-chemical calculations that are further extended to analyze the low-lying electronic states and the evolution of their multiconfigurational characters along the Fe-O PESs. These investigations show that the lowest-energy states develop oxyl Fe(III) character at distances that are relevant to the transition state (TS) for H-atom abstraction and define the frontier molecular orbitals that participate in the reactivity of S = 1 vs. S = 2 non-heme Fe(IV)[double bond, length as m-dash]O active sites. The S = 1 species has only one available channel that requires the C-H bond of a substrate to approach perpendicular to the Fe-oxo bond (the π channel). In contrast, there are three channels (one σ and two π) available for the S = 2 non-heme Fe(IV)[double bond, length as m-dash]O system allowing C-H substrate approach both along and perpendicular to the Fe-oxo bond that have important implications for enzymatic selectivity.

摘要

非血红素铁(IV)=O活性位点因其在生物医学和绿色催化中的应用而备受关注。这些位点已被证明具有S = 1或S = 2的基态自旋态;后者在生物学中具有功能。低温磁圆二色性(LT MCD)光谱探测了这些物种中激发态的性质,包括配体场(LF)态,而这些态用其他光谱学方法很难研究。特别是,MCD特征的温度依赖性使得它们能够被明确归属,从而确定了两个典型的S = 1和S = 2 NHFe(IV)=O配合物中的低激发态。此外,一些MCD带表现出振动结构,这使得能够绘制激发态相互作用及其对势能面(PES)的影响。对于S = 2物种,近红外吸收光谱和MCD光谱中还存在一个不寻常的光谱特征——法诺反共振(吸收峰中的凹陷)和法诺共振(MCD中的尖锐峰),这表明S = 1态与S = 2 LF态之间的自旋-轨道耦合较弱。这些实验数据与量子化学计算相关联,量子化学计算进一步扩展以分析低电子态及其沿Fe-O PES的多构型特征的演变。这些研究表明,能量最低的态在与氢原子提取的过渡态(TS)相关的距离处发展出氧合铁(III)特征,并定义了参与S = 1与S = 2非血红素铁(IV)=O活性位点反应性的前沿分子轨道。S = 1物种只有一个可用通道,该通道要求底物的C-H键垂直于铁-氧键接近(π通道)。相比之下,S = 2非血红素铁(IV)=O系统有三个通道(一个σ通道和两个π通道),允许C-H底物沿着和垂直于铁-氧键接近,这对酶的选择性具有重要意义。

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