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N-羟基邻苯二甲酰亚胺(NHPI)介导的苄基C-H键的连续电化学需氧氧化

Continuous N-Hydroxyphthalimide (NHPI)-Mediated Electrochemical Aerobic Oxidation of Benzylic C-H Bonds.

作者信息

Mo Yiming, Jensen Klavs F

机构信息

Department of Chemical Engineering, Massachusetts Institute of Technology, 77 Massachusetts Avenue, Cambridge, MA, 02139, USA.

出版信息

Chemistry. 2018 Jul 17;24(40):10260-10265. doi: 10.1002/chem.201802588. Epub 2018 Jun 25.

Abstract

Electroorganic chemistry has emerged as an environmentally benign tool for synthetic chemists to achieve efficient transformations that are challenging with traditional reagent-based methods. Continuous flow chemistry brings pharmaceutical industry numerous advantages, but implementing electroorganic synthesis in flow is challenging, especially for electroorganic reactions with coupled electrode reactions and slow chemical reactions. We present a continuous electrolysis system engineered for N-hydroxyphthalimide (NHPI) mediated electrochemical aerobic oxidation of benzylic C-H bonds. First, a cation-exchange membrane prevents the crossover of the NHPI anion from anolyte to catholyte avoiding reductive decomposition of NHPI at the cathode, and enables the usage of a cost-effective reticulated vitreous carbon (RVC) cathode instead of a platinum electrode. Second, running the electrochemical flow cell with recycle streams accommodates the inherently slow kinetics of the chemical reaction without phthalimide-N-oxyl (PINO) radical self-decomposition at the anode, and allows the usage of gaseous oxygen as co-oxidant.

摘要

有机电化学已成为合成化学家实现高效转化的一种环境友好型工具,而这些转化用传统的基于试剂的方法具有挑战性。连续流动化学给制药行业带来了诸多优势,但在流动体系中实施有机电合成具有挑战性,尤其是对于伴有耦合电极反应和缓慢化学反应的有机电化学反应。我们展示了一种为N-羟基邻苯二甲酰亚胺(NHPI)介导的苄基C-H键电化学需氧氧化而设计的连续电解系统。首先,阳离子交换膜可防止NHPI阴离子从阳极电解液渗透到阴极电解液,避免NHPI在阴极发生还原分解,并使得能够使用成本效益高的网状玻璃碳(RVC)阴极而非铂电极。其次,使用循环流运行电化学流通池可适应化学反应固有的缓慢动力学,同时避免阳极处邻苯二甲酰亚胺-N-氧基(PINO)自由基的自分解,并允许使用气态氧作为共氧化剂。

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