Dey Abhishek, Roche Cara L, Walters Marc A, Hodgson Keith O, Hedman Britt, Solomon Edward I
Department of Chemistry, Stanford University, Stanford, California 94305, USA.
Inorg Chem. 2005 Nov 14;44(23):8349-54. doi: 10.1021/ic050981m.
Sulfur K-edge X-ray absorption spectroscopy of a hydrogen-bonded elongated [Fe4S4]2+ cube is reported. The data show that this synthetic cube is less covalent than a normal compressed cube with no hydrogen bonding. DFT calculations reveal that the observed difference in electronic structure has significant contributions from both the cluster distortion and from hydrogen bonding. The elongated and compressed Fe4S4 structures are found to have different spin topologies (i.e., orientation of the delocalized Fe2S2 subclusters which are antiferromagnetically coupled to each other). It is suggested that the H-bonding interaction with the counterion does not contribute to the cluster elongation. A magneto-structural correlation is developed for the Fe4S4 cube that is used to identify the redox-active Fe2S2 subclusters in active sites of HiPIP and ferredoxin proteins involving these clusters.
报道了一种氢键连接的拉长型[Fe4S4]2+立方体的硫K边X射线吸收光谱。数据表明,这种合成立方体的共价性低于没有氢键的正常压缩立方体。密度泛函理论计算表明,观察到的电子结构差异来自簇畸变和氢键两者的显著贡献。发现拉长和压缩的Fe4S4结构具有不同的自旋拓扑结构(即,反铁磁相互耦合的离域Fe2S2子簇的取向)。有人提出,与抗衡离子的氢键相互作用对簇的拉长没有贡献。建立了Fe4S4立方体的磁结构相关性,用于识别涉及这些簇的HiPIP和铁氧化还原蛋白活性位点中的氧化还原活性Fe2S2子簇。