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反应条件在全局和局部双抛物线电荷转移模型中的作用。

Role of Reaction Conditions in the Global and Local Two Parabolas Charge Transfer Model.

作者信息

Orozco-Valencia Ulises, Gázquez José L, Vela Alberto

机构信息

Departamento de Química, Centro de Investigación y de Estudios Avanzados , Av. Instituto Politécnico Nacional 2508, México D.F. 07360, México.

Departamento de Química, Universidad Autónoma Metropolitana-Iztapalapa , Av. San Rafael Atlixco 186, Ciudad de México, 09340, México.

出版信息

J Phys Chem A. 2018 Feb 15;122(6):1796-1806. doi: 10.1021/acs.jpca.7b12001. Epub 2018 Feb 2.

Abstract

The local and global charge transfer approach based on the two parabolas model is applied to several problems aiming to show the importance of incorporating the reaction conditions to evaluate the global and local chemical descriptors. It is shown that, by preparation of the reactants, the chemical potentials of the reacting species determined by the two parabolas model satisfy the condition for the transfer of electrons in the direction dictated by the chemical potential difference. The model is applied to the hydration of alkenes, showing that it recovers Markovnikov's rule, to aromatic nitration, and to the interaction of nitrobenzenes with 1,3-diethylurea, an electrochemically controlled hydrogen-bonding problem. The applications presented show that to satisfy the charge transfer directionality established by the chemical potential differences obtained from the two parabolas model, one has to incorporate the reaction conditions in the evaluation of the global and local chemical descriptors. The global and local charge transfer predicted along these lines allows one to determine the direction of electron transfer prevailing in the reaction and also the most relevant atoms participating in the interactions between the reactants, aiding in the unraveling of the chemical interactions present in the system under investigation.

摘要

基于双抛物线模型的局部和全局电荷转移方法被应用于几个问题,旨在表明纳入反应条件以评估全局和局部化学描述符的重要性。结果表明,通过反应物的制备,由双抛物线模型确定的反应物种的化学势满足电子在由化学势差决定的方向上转移的条件。该模型被应用于烯烃的水合反应,表明它恢复了马尔科夫尼科夫规则,还应用于芳烃硝化反应以及硝基苯与1,3 - 二乙基脲的相互作用,这是一个电化学控制的氢键问题。所展示的应用表明,为了满足由双抛物线模型获得的化学势差所确立的电荷转移方向性,必须在评估全局和局部化学描述符时纳入反应条件。沿着这些思路预测的全局和局部电荷转移能够确定反应中占主导的电子转移方向,以及参与反应物之间相互作用的最相关原子,有助于揭示所研究系统中存在的化学相互作用。

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