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Initial hardness response and hardness profiles in the study of Woodward-Hoffmann rules for electrocyclizations

机译:伍德沃德-霍夫曼规则的电环化研究中的初始硬度响应和硬度曲线

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The fundamental principles of pericyclic reactions are governed by the Woodward-Hoffmann rules, which state that these reactions can only take place if the symmetries of the reactants' molecular orbitals and the products' molecular orbitals are the same. As such, these rules rely on the nodal structure of either the wave function or the frontier molecular orbitals, so it is unclear how these rules can be recovered in the density functional reactivity theory (or "conceptual DFT"), where the basic quantity is the strictly positive electron density. A third, nonsymmetry based approach to predict the outcome of pericyclic reactions is due to Zimmerman which uses the concept of the aromatic transition states: allowed reactions possess aromatic transition states, while forbidden reactions possess antiaromatic transition states. Based on our recent work on cycloadditions, we investigate the initial response of the chemical hardness, a central DFT based reactivity index, along the reaction profiles of a series of electrocyclizations. For a number of cases, we also compute complete initial reaction coordinate (IRC) paths and hardness profiles. We find that the hardness response is always higher for the allowed modes than for the forbidden modes. This suggests that the initial hardness response along the IRC is the key for casting the Woodward-Hoffmann rules into conceptual DFT.
机译:环周反应的基本原理受Woodward-Hoffmann规则支配,该规则规定只有在反应物的分子轨道和产物的分子轨道的对称性相同时,这些反应才能发生。因此,这些规则取决于波函数或边界分子轨道的节点结构,因此尚不清楚如何在密度泛函反应性理论(或“概念DFT”)中恢复这些规则,其中基本量为严格的正电子密度。第三种基于非对称性的方法来预测周环反应的结果是由于Zimmerman使用了芳香族过渡态的概念:允许的反应具有芳香族过渡态,而禁止的反应具有抗芳香族过渡态。基于我们最近对环加成反应的研究,我们沿着一系列电环化反应的概况研究了化学硬度,基于DFT的中心反应指数的初始响应。在许多情况下,我们还计算完整的初始反应坐标(IRC)路径和硬度曲线。我们发现,允许模式下的硬度响应总是比禁止模式下更高。这表明沿IRC的初始硬度响应是将Woodward-Hoffmann规则转化为概念DFT的关键。

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