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使用量子力学/分子力学(QM/MM)方法模拟离子液体中的化学反应。

Simulating chemical reactions in ionic liquids using QM/MM methodology.

作者信息

Acevedo Orlando

机构信息

Department of Chemistry and Biochemistry, Auburn University , Auburn, Alabama 36849, United States.

出版信息

J Phys Chem A. 2014 Dec 18;118(50):11653-66. doi: 10.1021/jp507967z. Epub 2014 Nov 5.

Abstract

The use of ionic liquids as a reaction medium for chemical reactions has dramatically increased in recent years due in large part to the numerous reported advances in catalysis and organic synthesis. In some extreme cases, ionic liquids have been shown to induce mechanistic changes relative to conventional solvents. Despite the large interest in the solvents, a clear understanding of the molecular factors behind their chemical impact is largely unknown. This feature article reviews our efforts developing and applying mixed quantum and molecular mechanical (QM/MM) methodology to elucidate the microscopic details of how these solvents operate to enhance rates and alter mechanisms for industrially and academically important reactions, e.g., Diels-Alder, Kemp eliminations, nucleophilic aromatic substitutions, and β-eliminations. Explicit solvent representation provided the medium dependence of the activation barriers and atomic-level characterization of the solute-solvent interactions responsible for the experimentally observed "ionic liquid effects". Technical advances are also discussed, including a linear-scaling pairwise electrostatic interaction alternative to Ewald sums, an efficient polynomial fitting method for modeling proton transfers, and the development of a custom ionic liquid OPLS-AA force field.

摘要

近年来,离子液体作为化学反应的反应介质的应用显著增加,这在很大程度上归因于催化和有机合成方面众多已报道的进展。在一些极端情况下,相对于传统溶剂,离子液体已被证明会引发机理变化。尽管对这些溶剂有很大兴趣,但对于其化学影响背后的分子因素仍知之甚少。这篇专题文章回顾了我们在开发和应用混合量子与分子力学(QM/MM)方法方面所做的努力,以阐明这些溶剂如何作用来提高反应速率并改变工业和学术上重要反应(如狄尔斯 - 阿尔德反应、肯普消除反应、亲核芳香取代反应和β - 消除反应)的机理的微观细节。明确的溶剂表示提供了活化能垒的介质依赖性以及对导致实验观察到的“离子液体效应”的溶质 - 溶剂相互作用的原子水平表征。还讨论了技术进展,包括用于替代埃瓦尔德求和的线性标度成对静电相互作用方法、用于模拟质子转移的高效多项式拟合方法以及定制离子液体OPLS - AA力场的开发。

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