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电场介导化学:揭示并利用(定向)电场施加化学催化和反应控制的潜力。

Electric-Field Mediated Chemistry: Uncovering and Exploiting the Potential of (Oriented) Electric Fields to Exert Chemical Catalysis and Reaction Control.

作者信息

Shaik Sason, Danovich David, Joy Jyothish, Wang Zhanfeng, Stuyver Thijs

机构信息

Institute of Chemistry, Edmond J. Safra Compus at Givat Ram, The Hebrew University, Jerusalem 91904, Israel.

Algemene Chemie, Vrije Universiteit Brussel, Pleinlaan 2, 1050 Brussels, Belgium.

出版信息

J Am Chem Soc. 2020 Jul 22;142(29):12551-12562. doi: 10.1021/jacs.0c05128. Epub 2020 Jul 8.

Abstract

This Perspective discusses oriented external-electric-fields (OEEF), and other electric-field types, as "smart reagents", which enable control over wide-ranging aspects of reactivity and structure. We discuss the potential of OEEFs to control nonredox reactions and impart rate-enhancement and selectivity. An OEEF along the "reaction axis", which is the direction whereby electronic reorganization converts reactants' to products' bonding, . Simply . Orienting the OEEF . For polar/polarizable reactants, the , which orient the reactants and drive their reaction. OEEFs also affect bond-dissociation energies and dissociation modes (covalent vs ionic), as well as alteration of molecular geometries and supramolecular aggregation. The "key" to gaining access to this toolbox provided by OEEFs is microscopic control over the alignment between the molecule and the applied field. We discuss the elegant experimental methods which have been used to verify the theoretical predictions and describe various alternative EEF sources and prospects for upscaling OEEF catalysis in solvents. We also demonstrate the numerous ways in which the OEEF effects can be mimicked by use of (designed) , i.e., . LEFs and OEEFs are shown to be equivalent and to obey the same ground rules. Outcomes are exemplified for Diels-Alder cycloadditions, oxidative addition of bonds by transition-metal complexes, H-abstractions by oxo-metal species, ionic cleavage of halogen bonds, methane activation, etc.

摘要

本视角文章讨论了取向外部电场(OEEF)以及其他类型的电场,将其视为“智能试剂”,这类电场能够对反应活性和结构的诸多方面进行控制。我们探讨了取向外部电场控制非氧化还原反应以及提高反应速率和选择性的潜力。沿着“反应轴”的取向外部电场,反应轴即电子重新排布将反应物键合转变为产物键合的方向。简单来说,对取向外部电场进行定向。对于极性/可极化反应物,该电场能够使反应物取向并驱动其反应。取向外部电场还会影响键解离能和解离模式(共价键与离子键),以及分子几何形状和超分子聚集的改变。获取取向外部电场提供的这个工具库的“关键”在于对分子与外加电场之间的取向进行微观控制。我们讨论了用于验证理论预测的精妙实验方法,并描述了各种替代电场源以及在溶剂中扩大取向外部电场催化规模的前景。我们还展示了利用(设计的)局部电场效应(LEF)即如何能够模拟取向外部电场效应的多种方式。结果表明局部电场效应和取向外部电场效应是等效的,并且遵循相同的基本规则。以狄尔斯 - 阿尔德环加成反应、过渡金属配合物对键的氧化加成反应、氧基金属物种的氢原子夺取反应、卤素键的离子裂解反应、甲烷活化反应等为例进行了说明。

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