Key Laboratory for Green Chemical Technology of the Ministry of Education, School of Chemical Engineering and Technology, Tianjin University, Tianjin, 300072, China.
Collaborative Innovative Center of Chemical Science and Engineering (Tianjin), Tianjin, 300072, China.
Adv Sci (Weinh). 2023 Feb;10(4):e2205540. doi: 10.1002/advs.202205540. Epub 2022 Dec 8.
The conversion of biomass is a favorable alternative to the fossil energy route to solve the energy crisis and environmental pollution. As one of the most versatile platform compounds, 5-hydroxymethylfural (HMF) can be transformed to various value-added chemicals via electrolysis combining with renewable energy. Here, the recent advances in electrochemical oxidation of HMF, from reaction mechanism to reactor design are reviewed. First, the reaction mechanism and pathway are summarized systematically. Second, the parameters easy to be ignored are emphasized and discussed. Then, the electrocatalysts are reviewed comprehensively for different products and the reactors are introduced. Finally, future efforts on exploring reaction mechanism, electrocatalysts, and reactor are prospected. This review provides a deeper understanding of mechanism for electrochemical oxidation of HMF, the design of electrocatalyst and reactor, which is expected to promote the economical and efficient electrochemical conversion of biomass for industrial applications.
生物质的转化是解决能源危机和环境污染的一种有利的替代方案,而化石能源途径。作为最通用的平台化合物之一,5-羟甲基糠醛(HMF)可以通过与可再生能源结合的电解转化为各种有价值的化学品。在这里,我们综述了 HMF 的电化学氧化的最新进展,从反应机理到反应器设计。首先,系统地总结了反应机理和途径。其次,强调并讨论了容易被忽略的参数。然后,全面综述了不同产物的电催化剂,并介绍了反应器。最后,对探索反应机理、电催化剂和反应器的未来工作进行了展望。本综述为 HMF 的电化学氧化反应机理、电催化剂和反应器的设计提供了更深入的了解,有望促进生物质的经济高效电化学转化,以应用于工业领域。