Thomas Christine M, Darensbourg Marcetta Y, Hall Michael B
Department of Chemistry, Texas A&M University, College Station, TX 77845, USA.
J Inorg Biochem. 2007 Nov;101(11-12):1752-7. doi: 10.1016/j.jinorgbio.2007.06.037. Epub 2007 Jul 7.
Density-functional calculations have been used to examine the electronic structure and bonding in the recently reported complex (PMe(3))(CO)(2)Fe(mu-pdt)(mu-CO)Fe(CO)(IMes) (1(+), IMes=1,3-bis(2,4,6-trimethylphenyl)-imidazol-2-ylidene). This mixed valent Fe(II)Fe(I) complex features a rotated geometry that places a carbonyl ligand in a semi-bridging position, which makes it an accurate model of the S =(1/2) resting state of the [FeFe]-hydrogenase active site. Calculations indicate that the unpaired electron in this complex lies almost entirely on the rotated iron center, implying that this iron remains in the Fe(I) oxidation state, while the unrotated iron has been oxidized to Fe(II). The frontier molecular orbitals in 1(+) are compared with those in the neutral Fe(I)Fe(I) precursor (PMe(3))(CO)(2)Fe(mu-pdt)(mu-CO)Fe(CO)(IMes) at both its optimized geometry (1) and constrained to a rotated geometry (1(rot)). These theoretical results are used to address the role of the bridging CO ligand in 1(+) and to predict reactivity patterns; they are related back to the intricate biological mechanism of [FeFe]-hydrogenase.
密度泛函计算已被用于研究最近报道的配合物[(PMe(3))(CO)(2)Fe(μ - pdt)(μ - CO)Fe(CO)(IMes)]⁺ (1⁺, IMes = 1,3 - 双(2,4,6 - 三甲基苯基) - 咪唑 - 2 - 亚基)的电子结构和键合。这种混合价态的Fe(II)Fe(I)配合物具有一种旋转几何结构,使得一个羰基配体处于半桥连位置,这使其成为[FeFe] - 氢化酶活性位点S =(1/2)静止态的精确模型。计算表明,该配合物中的未成对电子几乎完全位于旋转的铁中心上,这意味着该铁保持Fe(I)氧化态,而未旋转的铁已被氧化为Fe(II)。将1⁺中的前沿分子轨道与中性Fe(I)Fe(I)前体(PMe(3))(CO)(2)Fe(μ - pdt)(μ - CO)Fe(CO)(IMes)在其优化几何结构(1)以及受限为旋转几何结构(1(rot))时的前沿分子轨道进行了比较。这些理论结果用于探讨1⁺中桥连CO配体的作用并预测反应模式;它们与[FeFe] - 氢化酶复杂的生物学机制相关联。