首页> 外文期刊>Journal of Molecular Structure. Theochem: Applications of Theoretical Chemistry to Organic, Inorganic and Biological Problems >The suppressed reactivity of pyridine towards electrophiles as a result of an interplay between intra- and intermolecular interactions
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The suppressed reactivity of pyridine towards electrophiles as a result of an interplay between intra- and intermolecular interactions

机译:分子内和分子间相互作用的结果是吡啶对亲电子试剂的反应性受到抑制

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A new accounting is suggested for the suppressed relative reactivity of all carbon atoms of pyridine as compared to benzene in the bimolecular electrophilic substitution (S(E)2) processes in terms of an interplay between intra- and intermolecular interactions. Introduction of a nitrogen atom is shown to be accompanied by emergence of intramolecular interactions between the usual molecular orbitals of benzene that, in turn, give birth to definite mixed terms containing products of intra- and intermolecular interactions in the perturbative expansions for populations transferred between orbitals of the aromatic ring and those of electrophile. For ortho and para directions of the electrophilic attack, all the principal intramolecular interactions are shown to yield negative contributions to the intermolecular charge transfer in accordance with the dramatically reduced reactivities of these positions in pyridine. By contrast, contributions of different signs are shown to emerge in the relevant expressions referring to the meta attack. In this connection, conditions are revealed and analyzed that ensure the reduced intermolecular charge transfer for the meta position as well. Electrophiles of sufficiently high electron-accepting ability are shown to meet these conditions. (c) 2006 Elsevier B.V. All rights reserved.
机译:对于分子内和分子间相互作用,双分子亲电取代(S(E)2)过程中与苯相比,吡啶的所有碳原子相对抑制的反应性提出了新的解释。氮原子的引入被证明伴随着苯的通常分子轨道之间的分子内相互作用的出现,这反过来产生了确定的混合项,其中包含在轨道之间转移的种群的扰动扩展中的分子内和分子间相互作用的产物。芳环和亲电子基团对于亲电子攻击的正方向和对方向,根据吡啶中这些位置的显着降低的反应性,所有主要的分子内相互作用均显示出对分子间电荷转移产生负贡献。相比之下,在有关元攻击的相关表达式中显示出不同符号的贡献。就此而言,揭示并分析了条件,这些条件也确保了对于间位也降低了分子间电荷转移。具有足够高的电子接受能力的亲电试剂显示满足这些条件。 (c)2006 Elsevier B.V.保留所有权利。

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