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Enzymatic and catalytic reduction of dinitrogen to ammonia: Density functional theory characterization of alternative molybdenum active sites

机译:酶法和催化法将二氮还原为氨:替代钼活性位的密度泛函理论表征

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We used density functional calculations to model dinitrogen reduction by a FeMo cofactor containing a central nitrogen atom and by a Mo-based catalyst. Plausible intermediates, reaction pathways, and relative energetics in the enzymatic and catalytic reduction of N-2 to ammonia at a single Mo center are explored. Calculations indicate that the binding of N-2, to the Mo atom and the subsequent multiple proton-electron transfer to dinitrogen and its protonated species involved in the conversion of N-2, are feasible energetically. In the reduction of N-2, the Mo atom experiences a cycled oxidation state from Mo(IV) to Mo(VI) by nitrogenase and from Mo(III) to Mo(VI) by the molybdenum catalyst, respectively, tuning the gradual reduction of N-2. Such a wide range of oxidation states exhibited by the Mo center is crucial for the gradual reduction process via successive proton-electron transfer. Present results suggest that the Mo atom in the N-centered FeMo cofactor is a likely alternative active site for dinitrogen binding and reduction under mild conditions once there is an empty site available at the Mo site. (c) 2005 Wiley Periodicals, Inc.
机译:我们使用密度泛函计算来模拟包含中心氮原子的FeMo辅因子和Mo基催化剂对二氮还原的作用。探索了在单个Mo中心将N-2酶催化还原为氨的可能的中间体,反应途径和相对能。计算表明,N-2与Mo原子的结合以及随后的多次质子电子转移至二氮及其参与N-2转化的质子化物种在能量上都是可行的。在N-2的还原中,Mo原子分别通过固氮酶经历从Mo(IV)到Mo(VI)的循环氧化态,并通过钼催化剂经历从Mo(III)到Mo(VI)的循环氧化态,从而调整了逐渐还原N-2。 Mo中心展现出的如此广泛的氧化态对于通过连续的质子电子转移进行的逐步还原过程至关重要。目前的结果表明,一旦在Mo位点上有一个空位,在温和条件下,N中心FeMo辅因子中的Mo原子很可能是二氮结合和还原的替代活性位点。 (c)2005年Wiley Periodicals,Inc.

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