McWilliams Sean F, Rodgers Kenton R, Lukat-Rodgers Gudrun, Mercado Brandon Q, Grubel Katarzyna, Holland Patrick L
Department of Chemistry, Yale University , 225 Prospect Street, New Haven, Connecticut 06520, United States.
Department of Chemistry and Biochemistry, North Dakota State University , Fargo, North Dakota 58105, United States.
Inorg Chem. 2016 Mar 21;55(6):2960-8. doi: 10.1021/acs.inorgchem.5b02841. Epub 2016 Mar 1.
Alkali metal cations can interact with Fe-N2 complexes, potentially enhancing back-bonding or influencing the geometry of the iron atom. These influences are relevant to large-scale N2 reduction by iron, such as in the FeMoco of nitrogenase and the alkali-promoted Haber-Bosch process. However, to our knowledge there have been no systematic studies of a large range of alkali metals regarding their influence on transition metal-dinitrogen complexes. In this work, we varied the alkali metal in [alkali cation]2[LFeNNFeL] complexes (L = bulky β-diketiminate ligand) through the size range from Na(+) to K(+), Rb(+), and Cs(+). The FeNNFe cores have similar Fe-N and N-N distances and N-N stretching frequencies despite the drastic change in alkali metal cation size. The two diketiminates twist relative to one another, with larger dihedral angles accommodating the larger cations. In order to explain why the twisting has so little influence on the core, we performed density functional theory calculations on a simplified LFeNNFeL model, which show that the two metals surprisingly do not compete for back-bonding to the same π* orbital of N2, even when the ligand planes are parallel. This diiron system can tolerate distortion of the ligand planes through compensating orbital energy changes, and thus, a range of ligand orientations can give very similar energies.
碱金属阳离子可与Fe-N₂配合物相互作用,可能增强反馈键合或影响铁原子的几何结构。这些影响与铁催化的大规模N₂还原反应相关,例如在固氮酶的铁钼辅因子以及碱促进的哈伯-博施法中。然而,据我们所知,尚未有关于一系列碱金属对过渡金属-二氮配合物影响的系统研究。在这项工作中,我们在[碱金属阳离子]₂[LFeNNFeL]配合物(L = 庞大的β-二酮亚胺配体)中,将碱金属从Na⁺变化到K⁺、Rb⁺和Cs⁺。尽管碱金属阳离子大小发生了剧烈变化,但FeNNFe核具有相似的Fe-N和N-N距离以及N-N伸缩频率。两个二酮亚胺相对于彼此扭转,较大的二面角容纳较大的阳离子。为了解释为什么这种扭转对核心影响如此之小,我们对简化的LFeNNFeL模型进行了密度泛函理论计算,结果表明,即使配体平面平行时,两种金属也出人意料地不会竞争与N₂的同一个π*轨道的反馈键合。这种双铁体系可以通过补偿轨道能量变化来容忍配体平面的扭曲,因此,一系列配体取向可以给出非常相似的能量。