首页> 外文期刊>Dalton transactions: An international journal of inorganic chemistry >Effect of Lewis acid on the structure of a diiron dithiolate complex based on the active site of [FeFe]-hydrogenase assessed by density functional theory
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Effect of Lewis acid on the structure of a diiron dithiolate complex based on the active site of [FeFe]-hydrogenase assessed by density functional theory

机译:路易斯酸对基于密度泛函理论[FeFe]-加氢酶活性位点的二硫代二铁二铁配合物结构的影响

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摘要

The effect of Lewis acid on the structure and H-2 productivity of a diiron dithiolate complex was investigated by using density functional theory (DFT) calculations. When a model molecule of [(CH3SH)(CO)(2)Fe-p(mu-SCH2NHCH2S)Fe-d(CO)(3)] was geometrically optimized, two isomers were found: one is the unrotated structure (1) with no ligand between two Fe atoms and the other is the rotated structure (1*) with one CO ligand between two Fe atoms. The energy of 1* was higher than 1 by 6.4 kcal/mol in a vacuum. DFT calculations also revealed that all Lewis acids bound to the rotated structure more strongly than to the unrotated structure, leading to the stabilization of the rotated structure. In particular, when AlCl3 is used, the rotated structure (1*/AlCl3) is more stable than the unrotated one (1/AlCl3) by 1.2 kcal/mol in a vacuum. The stabilization of the rotated structure arises from both the stronger basicity of the mu-CO ligand than the axial CO ligand and the increase of the bond strength between the mu-CO ligand and Fe-p atom upon binding of Lewis acid to 1*. Calculation of energy barriers during electrocatalytic H-2 production revealed that 1*/AlCl3 could efficiently produce H-2 via a chemical-electrochemical-chemical-electrochemical mechanism. The analysis of the energy level of the lowest unoccupied molecular orbital showed that 1*/AlCl3 may produce H-2 at significantly lower reduction potential as compared with 1*. It is also found that the catalytic activity decreases with increasing polarity of the medium.
机译:通过使用密度泛函理论(DFT)计算,研究了路易斯酸对二硫代二硫酸铁二铁络合物的结构和H-2生产率的影响。当几何模型优化[(CH3SH)(CO)(2)Fe-p(mu-SCH2NHCH2S)Fe-d(CO)(3)]的模型分子时,发现两种异构体:一种是非旋转结构(1)在两个Fe原子之间没有配体,另一个是旋转结构(1 *),在两个Fe原子之间具有一个CO配体。在真空中,1 *的能量比1高6.4 kcal / mol。 DFT计算还表明,所有路易斯酸都比未旋转的结构更牢固地结合到旋转的结构上,从而导致旋转的结构稳定。特别地,当使用AlCl3时,在真空中旋转结构(1 * / AlCl3)比未旋转的结构(1 / AlCl3)稳定1.2 kcal / mol。 mu-CO配体的碱性强于轴向CO配体,并且路易斯酸与1 *结合后,mu-CO配体与Fe-p原子之间的结合强度增加,这是旋转结构稳定的原因。通过计算电催化H-2的能垒,发现1 * / AlCl3可以通过化学-电化学-化学-电化学机理有效地产生H-2。对最低未占据分子轨道的能级分析表明,与1 *相比,1 * / AlCl3可能以明显更低的还原电位产生H-2。还发现催化活性随着介质极性的增加而降低。

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