Yu Ying, Smith Jeremy M, Flaschenriem Christine J, Holland Patrick L
Department of Chemistry, University of Rochester, Rochester, NY 14627, USA.
Inorg Chem. 2006 Jul 24;45(15):5742-51. doi: 10.1021/ic052136+.
We report the synthesis, spectroscopy, and structural characterization of iron-alkyne and -alkene complexes of the type L(Me)Fe(ligand) [L(Me) = bulky beta-diketiminate, ligand = HCCPh, EtCCEt, CH2CHPh, EtCHCHEt, HCC(p-C6H4OCH3), HCC(p-C6H4CF3)]. The neutral ligand exchanges rapidly at room temperature, and the equilibrium constants have been measured or estimated. The binding affinity toward the low-coordinate Fe follows the trend HCCPh > EtCCEt > CH2CHPh > EtCHCHEt approximately PPh3 > benzene >> N2. This trend is consistent with a model in which pi back-bonding from the formally Fe(I) center is the dominant interaction in determining the relative binding affinities. In nitrogenase, alkynes are reduced while alkenes are unreactive, and this work suggests that the different binding affinities to low-coordinate Fe might explain the differential activity of the enzyme toward these two substrates.
我们报道了L(Me)Fe(配体)类型的铁-炔烃和 -烯烃配合物的合成、光谱学及结构表征[L(Me)=大位阻β-二酮亚胺,配体 = HCCPh、EtCCEt、CH2CHPh、EtCHCHEt、HCC(p-C6H4OCH3)、HCC(p-C6H4CF3)]。中性配体在室温下快速交换,并且已经测定或估算了平衡常数。对低配位铁的结合亲和力遵循HCCPh > EtCCEt > CH2CHPh > EtCHCHEt ≈ PPh3 > 苯 >> N2这一趋势。该趋势与一个模型相符,在该模型中,来自形式上的Fe(I)中心的π反馈键合是决定相对结合亲和力的主要相互作用。在固氮酶中,炔烃被还原而烯烃无反应,这项工作表明对低配位铁的不同结合亲和力可能解释了该酶对这两种底物的不同活性。