Wu Yun-Dong, Lai David K. W.
Department of Chemistry, Hong Kong University of Science and Technology, Clear Water Bay, Kowloon, Hong Kong.
J Org Chem. 1996 Nov 1;61(22):7904-7910. doi: 10.1021/jo960069i.
The substituent effects on O-H and O-CH(3) bond dissociation energies for a series of 18 para-substituted phenols (p-XC(6)H(4)OH) and 11 para-substituted anisoles have been studied using the density functional method in order to understand the origin of these effects. The calculated substituent effects agree well with experimental measurements for phenols but are substantially larger than the reported values for anisoles. Both ground-state effect and radical effect contribute significantly to the overall substituent effect. An electron-donating group causes a destabilization in phenols or anisoles (ground-state effect) but a stabilization in the phenoxy radicals (radical effect), resulting in reduced O-R bond dissociation energy. An electron-withdrawing group has the opposite effect. In most cases, the radical effect is more important than the ground-state effect. There is a good correlation between the calculated radical effects and calculated variations in charge and spin density on the phenoxy oxygen. This supports the concept that both polar and spin delocalization effects influence the stability of the phenoxy radical. While almost every para-substituent causes a stabilization of the phenoxy radical by spin delocalization, electron-donating groups stabilize and electron-withdrawing groups destabilize the phenoxy radical by the polar effect.
为了理解这些效应的起源,使用密度泛函方法研究了一系列18种对取代苯酚(p-XC₆H₄OH)和11种对取代苯甲醚中取代基对O-H和O-CH₃键解离能的影响。计算得到的取代基效应与苯酚的实验测量值吻合良好,但比对苯甲醚报道的值要大得多。基态效应和自由基效应都对整体取代基效应有显著贡献。供电子基团会使苯酚或苯甲醚不稳定(基态效应),但会使苯氧基自由基稳定(自由基效应),从而导致O-R键解离能降低。吸电子基团则有相反的效果。在大多数情况下,自由基效应比基态效应更重要。计算得到的自由基效应与苯氧基氧上电荷和自旋密度的计算变化之间有良好的相关性。这支持了极性和自旋离域效应都影响苯氧基自由基稳定性的概念。虽然几乎每个对位取代基都通过自旋离域使苯氧基自由基稳定,但供电子基团通过极性效应使苯氧基自由基稳定,而吸电子基团则使其不稳定。