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薄层中的电合成与微量分析:一种用于快速电解和电化学反应机理研究的电化学移液管。

Electrosynthesis and Microanalysis in Thin Layer: An Electrochemical Pipette for Rapid Electrolysis and Mechanistic Study of Electrochemical Reactions.

作者信息

Punchihewa Buwanila T, Minda Vidit, Gutheil William G, Rafiee Mohammad

机构信息

Division of Energy, Matter and Systems, School of Science and Engineering, University of Missouri-Kansas City, Kansas City, MI 64110, USA.

Division of Pharmacology and Pharmaceutical Sciences, University of Missouri-Kansas City, Kansas City, MI 64108, USA.

出版信息

Angew Chem Int Ed Engl. 2023 Oct 26;62(44):e202312048. doi: 10.1002/anie.202312048. Epub 2023 Sep 18.

Abstract

Electrochemistry represents unique approaches for the promotion and mechanistic study of chemical reactions and has garnered increasing attention in different areas of chemistry. This expansion necessitates the enhancement of the traditional electrochemical cells that are intrinsically constrained by mass transport limitations. Herein, we present an approach for designing an electrochemical cell by limiting the reaction chamber to a thin layer of solution, comparable to the thickness of the diffusion layer. This thin layer electrode (TLE) provides a modular platform to bypass the constraints of traditional electrolysis cells and perform electrolysis reactions in the timescale of electroanalytical techniques. The utility of the TLE for electrosynthetic applications benchmarked using NHPI-mediated electrochemical C-H functionalization. The application of microscale electrolysis for the study of drug metabolites was showcased by elucidating the oxidation pathways of the paracetamol drug. Moreover, hosting a microelectrode in the TLE, was shown to enable real-time probing of the profiles of redox-active components of these rapid electrosynthesis reactions.

摘要

电化学为促进化学反应及进行机理研究提供了独特方法,在化学的不同领域受到越来越多的关注。这种扩展需要改进传统的电化学电池,而传统电化学电池本质上受传质限制的约束。在此,我们提出一种设计电化学电池的方法,即将反应室限制在一层与扩散层厚度相当的薄溶液层中。这种薄层电极(TLE)提供了一个模块化平台,以绕过传统电解池的限制,并在电分析技术的时间尺度上进行电解反应。通过使用NHPI介导的电化学C-H官能化对TLE在电合成应用中的效用进行了基准测试。通过阐明对乙酰氨基酚药物的氧化途径,展示了微尺度电解在药物代谢物研究中的应用。此外,在TLE中放置微电极能够实时探测这些快速电合成反应中氧化还原活性成分的分布情况。

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