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原位生成的酸催化N,O-缩醛和π-活化醇的分子内和分子间烷基化反应。

Intra- and intermolecular alkylation of N,O-acetals and π-activated alcohols catalyzed by in situ generated acid.

作者信息

Hamon Mélanie, Dickinson Niall, Devineau Alice, Bolien David, Tranchant Marie-José, Taillier Catherine, Jabin Ivan, Harrowven David C, Whitby Richard J, Ganesan A, Dalla Vincent

机构信息

Unité de Recherche en Chimie Organique et Macromoléculaire, Faculté des Sciences et Techniques de l' Université du Havre , EA 3221, FR CNRS 3038, 25 rue Philippe Lebon, BP 540, 76058 Le Havre cedex, France.

出版信息

J Org Chem. 2014 Mar 7;79(5):1900-12. doi: 10.1021/jo4015886. Epub 2014 Feb 21.

DOI:10.1021/jo4015886
PMID:24533649
Abstract

Intramolecular and intermolecular alkylations of carbocation precursors of limited ionization ability, principally N,O-acetals, without the use of an exogenous reagent have been developed. The reactions are carried out in 1,1,2,2-tetrachloroethane (TCE) and take advantage of the ability of this solvent to continuously release small amounts of HCl by thermolytic elimination. A study of the reaction led to several improved protocols such as (1) preheated TCE, (2) microwave-assisted reactions, and (3) flow or sealed-tube conditions, which allow significant reaction rate enhancements and made possible some challenging reactions such as the α-amidoalkylation of ketones. Studies using flow chemistry confirmed not only that very low concentrations of HCl generated from the solvent were responsible for the reactivity but also that TCE had additional beneficial properties in comparison to other chlorinated solvents such as dichloroethane. The method can easily be extended to the alkylation using proelectrophiles such as π-activated alcohols, which are normally unreactive toward HCl catalysis. This work represents the first successful use of HCl, the simplest strong Brønsted acid, as an efficient alkylation catalyst.

摘要

已开发出在不使用外源试剂的情况下,对电离能力有限的碳正离子前体(主要是N,O-缩醛)进行分子内和分子间烷基化反应的方法。这些反应在1,1,2,2-四氯乙烷(TCE)中进行,并利用了该溶剂通过热解消除连续释放少量HCl的能力。对该反应的研究产生了几种改进的方案,例如(1)预热的TCE,(2)微波辅助反应,以及(3)流动或密封管条件,这些条件可显著提高反应速率,并使一些具有挑战性的反应成为可能,例如酮的α-酰胺烷基化反应。使用流动化学的研究不仅证实了由溶剂产生的极低浓度的HCl是反应活性的原因,而且还证实了与其他氯化溶剂(如二氯乙烷)相比,TCE具有额外的有益特性。该方法可以很容易地扩展到使用亲电前体(如π-活化醇)的烷基化反应,这些亲电前体通常对HCl催化无反应性。这项工作代表了最简单的强布朗斯特酸HCl首次成功用作有效的烷基化催化剂。

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