Pandey Krishna K, Lein Matthias, Frenking Gernot
School of Chemical Sciences, Devi Ahilya University Indore, Indore, India 452017.
J Am Chem Soc. 2003 Feb 12;125(6):1660-8. doi: 10.1021/ja020974m.
Quantum chemical calculations at the gradient corrected DFT level using the exchange correlation functionals BP86 and B3LYP of the geometries of the title compounds are reported. The theoretically predicted bond lengths and angles of the model compounds are in excellent agreement with experiment. The nature of the metal-ligand interactions is quantitatively analyzed with an energy decomposition method. The analysis of the electronic structure of the neutral metal germylyne complexes Ia-Id and the metallogermylenes IIa-IId shows that the former compounds have about the same degree of electrostatic and covalent bonding, while the relative strength of the covalent contributions in the latter molecules is lower (41-42%) than the electrostatic attraction (58-59%). The a' '(pi) bonding contribution in the group-6 germylyne complexes Ia-Ic is rather high (42% of the orbital interactions). In the iron complex Id, it is even higher (53.8%) than the sigma bonding. The pi bonding contributions to the covalent bonding become much less (18-20%) in the metallogermylenes IIa-IId.
报道了使用交换相关泛函BP86和B3LYP在梯度校正密度泛函理论(DFT)水平下对标题化合物几何结构进行的量子化学计算。模型化合物的理论预测键长和键角与实验结果高度吻合。采用能量分解方法对金属-配体相互作用的本质进行了定量分析。对中性金属锗炔配合物Ia-Id和金属锗烯配合物IIa-IId的电子结构分析表明,前一类化合物的静电键合和共价键合程度大致相同,而后者分子中共价贡献的相对强度低于静电吸引力(共价贡献占41-42%,静电吸引力占58-59%)。第6族锗炔配合物Ia-Ic中的a''(π)键合贡献相当高(占轨道相互作用的42%)。在铁配合物Id中,它甚至比σ键合更高(53.8%)。在金属锗烯配合物IIa-IId中,π键对共价键的贡献要小得多(18-20%)。