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笼型 MIr3S4 簇(M=V、Cr、Mn、Fe、Co、Ni、Cu、Mo、Ru 和 W)上氮气的活化和质子化的理论研究。

Theoretical study on activation and protonation of dinitrogen on cubane-type MIr3S4 clusters (M = V, Cr, Mn, Fe, Co, Ni, Cu, Mo, Ru, and W).

机构信息

Institute for Materials Chemistry and Engineering, Kyushu University, Fukuoka 819-0395, Japan.

出版信息

Inorg Chem. 2010 Mar 1;49(5):2464-70. doi: 10.1021/ic902414n.

Abstract

Density functional theory (DFT) calculations on cubane-type metal-sulfido clusters MIr(3)S(4) ligating N(2) (M = V, Cr, Mn, Fe, Co, Ni, Cu, Mo, Ru, and W) have been performed for the proposal of new clusters that can highly activate N(2) beyond the RuIr(3)S(4) cluster prepared by Mizobe and co-workers [Angew. Chem. Int. Ed. 2007, 46, 5431]. The degree of N(2) activation in the metal-N(2) complexes was evaluated based on the N-N bond distance and vibrational frequency and the gross atomic charge on N(2). The degree of N(2) activation strongly depends on the metal atoms at the N(2)-binding site, and the MoIr(3)S(4) and WIr(3)S(4) clusters exhibit significant N(2)-activation ability. The reactivity of the MIr(3)S(4)-N(2) complexes (M = Ru, Mo, and W) with a proton donor (lutidinium) has been discussed from a kinetic aspect by exploring a possible reaction pathway of proton transfer. The protonation of the Ru-N(2) complex would not occur due to a very high-activation barrier and to an instability of the Ru-NNH(+) complex, which is consistent with our present experimental result that the Ru-N(2) complex has not been protonated at room temperature. On the other hand, the protonation of the Mo-N(2) and W-N(2) complexes would proceed smoothly from DFT criteria. The result of calculations indicates that the Mo and W clusters are best suited for the protonation of N(2), which is the first step toward nitrogen fixation.

摘要

已对笼型金属-硫簇 MIr(3)S(4)与 N(2)配位(M = V、Cr、Mn、Fe、Co、Ni、Cu、Mo、Ru 和 W)进行了密度泛函理论(DFT)计算,目的是提出新的簇,以超越 Mizobe 及其同事制备的 RuIr(3)S(4)簇来高度活化 N(2)[Angew. Chem. Int. Ed. 2007, 46, 5431]。通过 N-N 键距离和振动频率以及 N(2)上的总原子电荷评估金属-N(2)配合物中 N(2)的活化程度。N(2)结合部位的金属原子强烈影响 N(2)的活化程度,MoIr(3)S(4)和 WIr(3)S(4)簇表现出显著的 N(2)活化能力。从动力学角度探讨了 MIr(3)S(4)-N(2)配合物(M = Ru、Mo 和 W)与质子供体(六氢吡啶)的反应性,通过探索质子转移的可能反应途径来研究。由于非常高的活化能垒和 Ru-NNH(+)配合物的不稳定性,Ru-N(2)配合物不会发生质子化,这与我们目前的实验结果一致,即在室温下,Ru-N(2)配合物没有被质子化。另一方面,从 DFT 标准来看,Mo-N(2)和 W-N(2)配合物的质子化会顺利进行。计算结果表明,Mo 和 W 簇最适合 N(2)的质子化,这是固氮的第一步。

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