Liu Isiah Po-Chun, Lee Gene-Hsiang, Peng Shie-Ming, Bénard Marc, Rohmer Marie-Madeleine
Laboratoire de Chimie Quantique, Institut de Chimie, UMR 7177, CNRS-ULP, Strasbourg, France.
Inorg Chem. 2007 Nov 12;46(23):9602-8. doi: 10.1021/ic070319l. Epub 2007 Oct 11.
The synthesis and crystal structure of two heteronuclear compounds stabilized by four dipyridylamide (dpa) ligands is reported. Cu2Pd(dpa)4Cl2 (1) and Cu2Pt(dpa)4Cl2 (2) exhibit an approximate D4 symmetry and a linear metal framework. They are structurally similar to the homotrinuclear complexes M3(dpa)4L2 already characterized with various transition metals (M=Cr, Co, Ni, Cu, Rh, Ru). With 26 metal valence electrons, they are also isoelectronic to the oxidized form of the tricopper complex [Cu3(dpa)4Cl2]+ (3), previously characterized and investigated by Berry et al.10 The magnetic properties and the EPR spectra of 1 and 2 are reported. The results for 1 are interpreted in terms of a weak antiferromagnetic interaction (2J=-7.45 cm(-1) within the framework of the Heisenberg Hamiltonian H=-2JAB ŝAŝB) between the Cu(II) magnetic centers. For 2, the antiferromagnetic interaction sharply decreases to <1 cm(-1). These properties are at variance with those of (3), for which a relatively strong antiferromagnetic interaction (2J=-34 cm(-1)) had been reported. DFT/UB3LYP calculations reproduce the decrease of the magnetic interaction from 3 to 1 and assign it to the role of the nonmagnetic metal in the transference of the superexchange coupling. However, the vanishing of the magnetic interaction in 2 could not be reproduced at this level of theory and is tentatively assigned to spin-orbit coupling.
报道了由四个二吡啶酰胺(dpa)配体稳定的两种异核化合物的合成及晶体结构。Cu2Pd(dpa)4Cl2(1)和Cu2Pt(dpa)4Cl2(2)呈现出近似的D4对称性和线性金属框架。它们在结构上与已用各种过渡金属(M = Cr、Co、Ni、Cu、Rh、Ru)表征的同三核配合物M3(dpa)4L2相似。它们具有26个金属价电子,与三铜配合物[Cu3(dpa)4Cl2]+(3)的氧化形式也是等电子体,此前Berry等人已对其进行了表征和研究。报道了1和2的磁性及电子顺磁共振光谱。对于1的结果,在海森堡哈密顿量H = -2JABŝAŝB的框架内,根据Cu(II)磁性中心之间的弱反铁磁相互作用(2J = -7.45 cm(-1))进行解释。对于2,反铁磁相互作用急剧降至<1 cm(-1)。这些性质与(3)的性质不同,(3)曾报道有相对较强的反铁磁相互作用(2J = -34 cm(-1))。密度泛函理论/UB3LYP计算重现了从3到1的磁相互作用的降低,并将其归因于非磁性金属在超交换耦合转移中的作用。然而,在该理论水平下无法重现2中磁相互作用的消失,暂归因于自旋轨道耦合。