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长路径更优:扩展路径流动池中的电合成。

The Longer Route can be Better: Electrosynthesis in Extended Path Flow Cells.

机构信息

School of Chemistry, The University of Southampton, Highfield, Southampton, SO17 1BJ, UK.

出版信息

Chem Rec. 2021 Sep;21(9):2472-2487. doi: 10.1002/tcr.202100163. Epub 2021 Jul 24.

Abstract

This personal account provides an overview of work conducted in my research group, and through collaborations with other chemists and engineers, to develop flow electrolysis cells and apply these cells in organic electrosynthesis. First, a brief summary of my training and background in organic synthesis is provided, leading in to the start of flow electrosynthesis in my lab in collaboration with Derek Pletcher. Our work on the development of extended path electrolysis flow reactors is described from a synthetic organic chemist's perspective, including laboratory scale-up to give several moles of an anodic methoxylation product in one day. The importance of cell design is emphasised with regards to achieving good performance in laboratory electrosynthesis with productivities from hundreds of mg h to many g h , at high conversion in a selective fashion. A simple design of recycle flow cell that can be readily constructed in a small University workshop is also discussed, including simple modifications to improve cell performance. Some examples of flow electrosyntheses are provided, including Shono-type oxidation, anodic cleavage of protecting groups, Hofer-Moest reaction of cubane carboxylic acids, oxidative esterification and amidation of aldehydes, and reduction of aryl halides.

摘要

这篇个人自述提供了我在研究小组中所做工作的概述,以及通过与其他化学家和工程师的合作,开发流动电解池并将这些电池应用于有机电合成的概述。首先,简要介绍了我在有机合成方面的培训和背景,然后介绍了我与 Derek Pletcher 合作在实验室中开始进行流动电合成的情况。我们从合成有机化学家的角度描述了扩展路径电解流动反应器的开发工作,包括实验室放大规模,每天可获得几个毫摩尔的阳极甲氧基化产物。强调了电池设计的重要性,以实现具有数百毫克每小时到数克每小时生产力的实验室电合成的良好性能,以选择性方式实现高转化率。还讨论了一种可在小型大学车间中轻松构建的简单循环流动电池设计,包括一些简单的改进以提高电池性能。提供了一些流动电合成的示例,包括 Shono 型氧化、保护基团的阳极裂解、立方烷羧酸的 Hofer-Moest 反应、醛的氧化酯化和酰胺化、以及芳基卤化物的还原。

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