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铈光催化促进的醇的去羟甲基化反应。

Dehydroxymethylation of Alcohols Enabled by Cerium Photocatalysis.

机构信息

School of Physical Science and Technology , ShanghaiTech University , Shanghai 201210 , China.

State Key Laboratory of Bioorganic and Natural Products Chemistry, Shanghai Institute of Organic Chemistry , Chinese Academy of Sciences , 345 Lingling Road , Shanghai 200032 , China.

出版信息

J Am Chem Soc. 2019 Jul 3;141(26):10556-10564. doi: 10.1021/jacs.9b05932. Epub 2019 Jun 19.

Abstract

Dehydroxymethylation, the direct conversion of alcohol feedstocks as alkyl synthons containing one less carbon atom, is an unconventional and underexplored strategy to exploit the ubiquity and robustness of alcohol materials. Under mild and redox-neutral reaction conditions, utilizing inexpensive cerium catalyst, the photocatalytic dehydroxymethylation platform has been furnished. Enabled by ligand-to-metal charge transfer catalysis, an alcohol functionality has been reliably transferred into nucleophilic radicals with the loss of one molecule of formaldehyde. Intriguingly, we found that the dehydroxymethylation process can be significantly promoted by the cerium catalyst, and the stabilization effect of the fragmented radicals also plays a significant role. This operationally simple protocol has enabled the direct utilization of primary alcohols as unconventional alkyl nucleophiles for radical-mediated 1,4-conjugate additions with Michael acceptors. A broad range of alcohols, from simple ethanol to complex nucleosides and steroids, have been successfully applied to this fragment coupling transformation. Furthermore, the modularity of this catalytic system has been demonstrated in diversified radical-mediated transformations including hydrogenation, amination, alkenylation, and oxidation.

摘要

去甲羟化作用是一种将醇原料直接转化为少一个碳原子的烷基合成子的非常规且尚未充分探索的策略,可充分利用醇类物质的普遍性和稳定性。在温和且氧化还原中性的反应条件下,利用廉价的铈催化剂,构建了光催化去甲羟化反应平台。通过配体到金属的电荷转移催化作用,醇官能团可可靠地转化为亲核自由基,同时失去一分子甲醛。有趣的是,我们发现铈催化剂可以显著促进去甲羟化过程,并且碎片化自由基的稳定作用也起着重要作用。这种操作简单的方案可以使伯醇直接用作非常规的烷基亲核试剂,用于与迈克尔受体进行自由基介导的 1,4-共轭加成反应。广泛的醇类化合物,包括简单的乙醇到复杂的核苷和甾体,都已成功应用于该片段偶联转化中。此外,该催化体系的模块化已在包括氢化、胺化、烯丙基化和氧化在内的多样化的自由基介导转化中得到证明。

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