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Homolytic C-H and N-H Bond Dissociation Energies of Strained Organic Compounds

机译:应变有机化合物的均相C-H和N-H键解离能

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High-level computations at G3, CBS-Q, and G3B3 levels were conducted, and good-quality C-H and N-H bond dissociation energies (BDEs) were obtained for a variety of saturated and unsaturated strained hydrocarbons and amines for the first time. From detailed NBO analyses, we found that the C-H BDEs of hydrocarbons are determined mainly by the hybridization of the parent compound, the hybridization of the radical, and the extent of spin delocalization of the radical. The ring strain has a significant effect on the C-H BDE because it forces the parent compound and radical to adopt certain undesirable hybridization. A structure-activity relationship equation (i.e., BDE (C-H) = 61.1-227.8 (p_(parent)% - 0.75)~2 + 152.9 (p_(radical)% - 1.00)~2 + 40.4 spin) was established, and it can predict the C-H BDEs of a variety of saturated and unsaturated strained hydrocarbons fairly well. For the C-H BDEs associated with the bridgehead carbons of the highly rigid strained compounds, we found that the strength of the C-H bond can also be predicted from the H-C-C bond angles of the bridgehead carbon. Finally, we found that N-H BDEs show less dependence on the ring strain than C-H BDEs.
机译:进行了G3,CBS-Q和G3B3级别的高级计算,并首次获得了针对各种饱和和不饱和应变烃和胺的优质C-H和N-H键解离能(BDE)。通过详细的NBO分析,我们发现碳氢化合物的C-H BDEs主要由母体化合物的杂化,基团的杂化以及基团的自旋离域化程度决定。环应变对C-H BDE具有重要影响,因为它迫使母体化合物和自由基采取某些不良杂交。建立了结构-活性关系方程(即BDE(CH)= 61.1-227.8(p_(父)%-0.75)〜2 + 152.9(p_(自由基)%-1.00)〜2 + 40.4自旋),并建立了结构-活性关系方程可以很好地预测各种饱和和不饱和应变烃的CH BDE。对于与高刚性应变化合物的桥头碳相关的C-H BDE,我们发现C-H键的强度也可以从桥头碳的H-C-C键角预测。最后,我们发现N-H BDEs对环应变的依赖性比C-H BDEs小。

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