Department of Chemistry, North Eastern Hill University, Shillong, India.
Center for Computational Quantum Chemistry, University of Georgia, Athens, Georgia, USA.
J Comput Chem. 2023 Jan 30;44(3):355-366. doi: 10.1002/jcc.26936. Epub 2022 Jun 2.
Many binuclear nickel complexes have NiNi distances suggesting NiNi covalent bonds, including lantern-type complexes with bridging bidentate ligands. This DFT study treats tetragonal, trigonal, and digonal lantern-type complexes with the formamidinate, guanidinate, and formate ligands, besides some others. Formal bond orders (ranging from zero to two) are assigned to all the NiNi bonds on the basis of MO occupancy considerations. A VB-based electron counting approach assigns plausible resonance structures to the dinickel cores. Model tetragonal complexes with the dimethylformamidinate and the dithioformate ligands have singlet ground states whose non-covalently bonded NiNi distances are close to those in their experimentally known counterparts. Trigonal dinickel complexes are unknown, but are predicted to have quartet ground states with NiNi bonds of order 0.5. The model digonal complexes are predicted to have triplet ground states, but the predicted NiNi bond lengths are longer than those found in their experimentally known counterparts. This could owe to inadequate treatment of electron correlation by DFT in these short NiNi bonds with their multiconfigurational character. All the NiNi bond distances here are categorized into ranges according to the NiNi bond orders of 0, 0.5, 1, 1.5, and 2, no NiNi bonds of order higher than two being identified. The NiNi bonds of given order in these lantern-type complexes are consistently shorter than the corresponding NiNi bonds in dinickel complexes having carbonyl ligands, attributable to the metalmetal bond lengthening effect of CO ligands.
许多双核镍配合物具有 NiNi 距离,表明存在 NiNi 共价键,包括具有桥联双齿配体的灯笼型配合物。这项密度泛函理论研究处理了具有甲酰胺基、胍基和甲酸盐配体的四方、三角和二角灯笼型配合物,以及其他一些配合物。基于 MO 占据考虑,为所有 NiNi 键分配了形式键序(从零到二)。基于 VB 的电子计数方法为二镍核分配了合理的共振结构。具有二甲基甲酰胺基和二硫代甲酸盐配体的模型四方配合物具有单重基态,其非共价键合的 NiNi 距离接近其实验已知对应物。三角二镍配合物未知,但预测具有四重基态,NiNi 键序为 0.5。模型二角配合物预测具有三重基态,但预测的 NiNi 键长比实验已知对应物长。这可能归因于 DFT 在这些具有多组态特征的短 NiNi 键中对电子相关的处理不足。根据 NiNi 键序为 0、0.5、1、1.5 和 2,将这里的所有 NiNi 键距离分类到相应的范围内,没有发现键序高于 2 的 NiNi 键。这些灯笼型配合物中给定序的 NiNi 键始终比具有羰基配体的二镍配合物中的相应 NiNi 键短,这归因于 CO 配体的金属金属键伸长效应。