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首页> 外文期刊>Chemical science >Deciphering the origin of million-fold reactivity observed for the open core diiron [HO-Fe-III-O-Fe-IV=O](2+) species towards C-H bond activation: role of spin-states, spin-coupling, and spin-cooperation
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Deciphering the origin of million-fold reactivity observed for the open core diiron [HO-Fe-III-O-Fe-IV=O](2+) species towards C-H bond activation: role of spin-states, spin-coupling, and spin-cooperation

机译:在CH键活化的开放核酰亚二摩[HO-FE-III-IV-FE-IV = O](2+)物种中观察到百万倍反应性的原点:旋转状态,旋转偶联和 旋转合作

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摘要

High-valent metal-oxo species have been characterised as key intermediates in both heme and non-heme enzymes that are found to perform efficient aliphatic hydroxylation, epoxidation, halogenation, and dehydrogenation reactions. Several biomimetic model complexes have been synthesised over the years to mimic both the structure and function of metalloenzymes. The diamond-core [Fe-2(mu-O)(2)] is one of the celebrated models in this context as this has been proposed as the catalytically active species in soluble methane monooxygenase enzymes (sMMO), which perform the challenging chemical conversion of methane to methanol at ease. In this context, a report of open core [HO(L)Fe-III-O-Fe-IV(O)(L)](2+)(1) gains attention as this activates C-H bonds a million-fold faster compared to the diamond-core structure and has the dual catalytic ability to perform hydroxylation as well as desaturation with organic substrates. In this study, we have employed density functional methods to probe the origin of the very high reactivity observed for this complex and also to shed light on how this complex performs efficient hydroxylation and desaturation of alkanes. By modelling fifteen possible spin-states for 1 that could potentially participate in the reaction mechanism, our calculations reveal a doublet ground state for 1 arising from antiferromagnetic coupling between the quartet Fe-IV centre and the sextet Fe-III centre, which regulates the reactivity of this species. The unusual stabilisation of the high-spin ground state for Fe-IV=O is due to the strong overlap of Fe-IV sigma*(z2) with the Fe-III pi*(xz) orbital, reducing the antibonding interactionsviaspin-cooperation. The electronic structure features computed for1are consistent with experiments offering confidence in the methodology chosen. Further, we have probed various mechanistic pathways for the C-H bond activation as well as -OH rebound/desaturation of alkanes. An extremely small barrier height computed for the first hydrogen atom abstraction by the terminal Fe-IV=O unit was found to be responsible for the million-fold activation observed in the experiments. The barrier height computed for -OH rebound by the Fe-III-OH unit is also smaller suggesting a facile hydroxylation of organic substrates by 1. A strong spin-cooperation between the two iron centres also reduces the barrier for second hydrogen atom abstraction, thus making the desaturation pathway competitive. Both the spin-state as well as spin-coupling between the two metal centres play a crucial role in dictating the reactivity for species 1. By exploring various mechanistic pathways, our study unveils the fact that the bridged mu-oxo group is a poor electrophile for both C-H activation as well for -OH rebound. As more and more evidence is gathered in recent years for the open core geometry of sMMO enzymes, the idea of enhancing the reactivityviaan open-core motif has far-reaching consequences.
机译:高价金属氧气物种的特征在于血红素和非血红素酶中的关键中间体,其发现能够进行有效的脂族羟基化,环氧化,卤化和脱氢反应。多年来已经合成了几个仿生模型复合物,以模仿金属酶的结构和功能。钻石芯[Fe-2(MU-2(MU-O)(2)]是该背景下的庆祝模型之一,因为这已被提出为可溶性甲烷单氧化酶(SMMO)中的催化活性物种,其执行具有挑战性的化学品易于转化甲烷至甲醇。在这方面,开放核心[HO(L)FE-II-OI-FE-FE-IV(O)(1)](2 +)(1)的报告,因为这激活了CH键,比较了百万倍对于钻石核心结构,具有对有机基材进行羟基化的双重催化能力,以及与有机基材的去饱和。在这项研究中,我们采用了密度函数方法来探测该综合体观察到的非常高反应性的起源,并且还阐明了该复合物如何进行高效的羟基化和烷烃的去饱和度。通过建模十五种可能的旋转状态,可以为可以参与反应机制,我们的计算显示了从Quartet Fe-IV中心和Sextet Fe-III中心之间的反铁磁耦合产生的1个双射线接地状态,这调节了反应性这个物种。对于Fe-IV = O的高旋转接地状态的异常稳定性是Fe-IV Sigma *(Z2)与Fe-III PI *(XZ)轨道重叠的强度,降低了抗抗体相互作用viaSpin合作。电子结构特征计算,以1ARE与为所选方法提供信心的实验一致。此外,我们已经探讨了C-H键活化的各种机械途径,以及烷烃的反弹/去饱和度。针对终端Fe-IV = O单元的第一个氢原子抽象计算的极小屏障高度被发现负责实验中观察到的百万倍激活。 Fe-III-OH单元计算的-OH反弹的屏障高度也较小,表明有机基材的容易羟基化达到1.两种铁中心之间的强旋转协作也降低了第二氢原子抽象的屏障,从而减少了对第二氢原子抽象的屏障使得去饱和途径竞争。两个金属中心之间的旋转状态和自旋耦合都在对物种的反应性方面起着至关重要的作用。通过探索各种机械途径,我们的研究推出了桥接的Mu-Oxo组是一种差的亲电对于CH激活,也是为了反弹。近年来越来越多地收集了SMMO酶的开放核心几何形状的越来越多的证据,加强反应性viaan开放核心主题的想法具有深远的后果。

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