Regnier Morgan, Vega Clara, Ioannou Dimitris I, Noël Timothy
Flow Chemistry Group, Van't Hoff Institute for Molecular Sciences (HIMS), University of Amsterdam, SciencePark 904, 1098XH, Amsterdam, The Netherlands.
Chem Soc Rev. 2024 Oct 28;53(21):10741-10760. doi: 10.1039/d4cs00539b.
Utilizing electrons directly offers significant potential for advancing organic synthesis by facilitating novel reactivity and enhancing selectivity under mild conditions. As a result, an increasing number of organic chemists are exploring electrosynthesis. However, the efficacy of electrochemical transformations depends critically on the design of the electrochemical cell. Batch cells often suffer from limitations such as large inter-electrode distances and poor mass transfer, making flow cells a promising alternative. Implementing flow cells, however, requires a foundational understanding of microreactor technology. In this review, we briefly outline the applications of flow electrosynthesis before providing a comprehensive examination of existing flow reactor technologies. Our goal is to equip organic chemists with the insights needed to tailor their electrochemical flow cells to meet specific reactivity requirements effectively. We also highlight the application of reactor designs in scaling up electrochemical processes and integrating high-throughput experimentation and automation. These advancements not only enhance the potential of flow electrosynthesis for the synthetic community but also hold promise for both academia and industry.
直接利用电子为推进有机合成提供了巨大潜力,它能在温和条件下促进新的反应活性并提高选择性。因此,越来越多的有机化学家正在探索电合成。然而,电化学转化的效率关键取决于电化学电池的设计。间歇式电池常常存在诸如电极间距大、传质差等局限性,这使得流动电池成为一种有前景的替代方案。然而,实现流动电池需要对微反应器技术有基本的了解。在这篇综述中,我们先简要概述流动电合成的应用,然后全面考察现有的流动反应器技术。我们的目标是为有机化学家提供所需的见解,以便他们有效地定制电化学流动电池,以满足特定的反应活性要求。我们还强调了反应器设计在扩大电化学过程规模以及整合高通量实验和自动化方面的应用。这些进展不仅增强了流动电合成对合成领域的潜力,也为学术界和工业界带来了希望。