首页> 外文期刊>Chemistry: A European journal >Dissecting the Intimate Mechanism of Cyanation of {2Fe3S} Complexes Related to the Active Site of All-Iron Hydrogenases by DFT Analysis of Energetics,Transition States,Intermediates and Products in the Carbonyl Substitution Pathway
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Dissecting the Intimate Mechanism of Cyanation of {2Fe3S} Complexes Related to the Active Site of All-Iron Hydrogenases by DFT Analysis of Energetics,Transition States,Intermediates and Products in the Carbonyl Substitution Pathway

机译:通过DFT分析羰基取代途径中的能量,过渡态,中间体和产物,剖析了与全铁氢化酶活性位点相关的{2Fe3S}配合物氰化的密切机理。

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A bridging carbonyl intermediate with key structural elements of the diiron sub-site of all-iron hydro-genase has been experimentally observed in the CN/CO substitution pathway of the |2Fe3S) carbonyl precursor,[Fe_2(CO)_5(MeSCH_2C(Me)(CH_2S)_2}].Herein we have used density functional theory (DFT) to dissect the overall substitution pathway in terms of the energetics and the structures of transition states,intermediates and products.We show that the formation of bridging CO transitions states is explicitly involved in the intimate mechanism of dicyanation.The enhanced rate of monocyanation of (2Fe3S) over the (2Fe2S) species [Fe_2(CO)_6{CH_2(CH_2S)_2}] is found to rest with the ability of the thioether ligand to both stabilise a mu-CO transition state and act as a good leaving group.In contrast,the second cyanation step of the (2Fe3S) species is kinetically slower than for the (2Fe2S) monocyanide because the Fe2 atom is deactivated by coordination of the electron-donating thioether group.In addition,hindered rotation and the reaction coordinate of the approaching CN~- group,are other factors which explain reactivity differences in (2Fe2S) and {2Fe3SJ systems.The intermediate species formed in the second cyanation step of {2Fe3S} species is a mu-CO species,confirming the structural assignment made on the basis of FT-IR data (S.J.George,Z.Cui,M.Razavet,C.J.Pickett,Chem.Eur.J.2002,8,4037-4046).In support of this we find that computed and experimental IR frequencies of structurally characterised {2Fe3S} species and those of the bridging carbonyl intermediate are in excellent agreement.In a wider context,the study may provide some insight into the reactivity of dinuclear systems-in which neighbouring group on-off coordination plays a role in substitution pathways.
机译:在| 2Fe3S)羰基前体[Fe_2(CO)_5(MeSCH_2C(Me))的CN / CO取代途径中,已通过实验观察到桥接的羰基中间体及其全铁氢化酶的二价铁亚基关键结构元素。 )(CH_2S)_2}]。这里我们使用密度泛函理论(DFT)从能量学和过渡态,中间体和产物的结构方面剖析了整体替代途径。我们证明了桥接CO过渡态的形成(2Fe3S)相对于(2Fe2S)物种[Fe_2(CO)_6 {CH_2(CH_2S)_2}]的单氰化速率提高与硫醚配体的能力息息相关。相比之下,(2Fe3S)物种的第二个氰化步骤在动力学上比单氰化物(2Fe2S)慢,因为Fe2原子会通过配位基团的失活而失活。给电子体硫醚基此外,接近的CN〜-基团的旋转受阻和反应坐标是解释(2Fe2S)和{2Fe3SJ系统中反应性差异的其他因素。{2Fe3S}物种第二个氰化步骤中形成的中间物种是mu-CO物种,确认根据FT-IR数据进行的结构分配(SJGeorge,Z.Cui,M.Razavet,CJPickett,Chem.Eur.J.2002,8,4037-4046)。对此的支持,我们发现结构表征的{2Fe3S}物种与架桥羰基中间体的计算和实验IR频率非常吻合。在更广泛的背景下,该研究可以为双核系统的反应性提供一些见识-在其中邻近群体的开关协调在替代途径中发挥作用。

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