Pierrefixe Simon C A H, Bickelhaupt F Matthias
Afdeling Theoretische Chemie, Scheikundig Laboratorium der Vrije Universiteit, De Boelelaan 1083, NL-1081 HV Amsterdam, The Netherlands.
Chemistry. 2007;13(22):6321-8. doi: 10.1002/chem.200700206.
Geometry is one of the primary and most direct indicators of aromaticity and antiaromaticity: a regular structure with delocalized double bonds (e.g., benzene) is symptomatic of aromaticity, whereas a distorted geometry with localized double bonds (e.g., 1,3-cyclobutadiene) is characteristic of antiaromaticity. Here, we present a molecular-orbital (MO) model of aromaticity that explains, in terms of simple orbital-overlap arguments, why this is so. Our MO model is based on accurate Kohn-Sham DFT analyses of the bonding in benzene, 1,3-cyclobutadiene, cyclohexane, and cyclobutane, and how the bonding mechanism is affected if these molecules undergo geometrical deformations between regular, delocalized ring structures, and distorted ones with localized double bonds. We show that the propensity of the pi electrons is always, that is, in both the aromatic and antiaromatic molecules, to localize the double bonds, against the delocalizing force of the sigma electrons. More importantly, we show that the pi electrons nevertheless decide about the localization or delocalization of the double bonds. A key component of our model for uncovering and resolving this seemingly contradictory situation is to analyze the bonding in the various model systems in terms of two interpenetrating fragments that preserve, in good approximation, their geometry along the localization/delocalization modes.
具有离域双键的规则结构(如苯)是芳香性的特征,而具有定域双键的扭曲几何形状(如1,3 - 环丁二烯)则是反芳香性的特征。在此,我们提出一种芳香性的分子轨道(MO)模型,该模型基于简单的轨道重叠观点解释了为何如此。我们的MO模型基于对苯、1,3 - 环丁二烯、环己烷和环丁烷中键合的精确Kohn - Sham密度泛函理论(DFT)分析,以及如果这些分子在规则的离域环结构和具有定域双键的扭曲结构之间发生几何变形时键合机制是如何受到影响的。我们表明,π电子总是倾向于(即在芳香性和反芳香性分子中都是如此)使双键定域,这与σ电子的离域力相反。更重要的是,我们表明π电子仍然决定着双键的定域或离域。我们模型中用于揭示和解决这种看似矛盾情况的一个关键组成部分是,根据两个相互贯穿的片段来分析各种模型系统中的键合,这两个片段在沿着定域/离域模式时能很好地保持其几何形状。