Wu Shutao, Liu Fei
Department of Chemical Engineering, Institute of Chemistry and Chemical Engineering, Guizhou University, Guiyang, Guizhou 550025, China.
Guizhou Key Laboratory for Green Chemical and Clean Energy Technology, Guiyang, Guizhou 550025, China.
ChemSusChem. 2025 Feb 16;18(4):e202401751. doi: 10.1002/cssc.202401751. Epub 2024 Nov 9.
Emissions of nitrogen oxide (NO) species (NO and NO) and nitrate/nitrite NO , such as NO and NO , have led to serious water pollution and climate challenges. How to remove these wastes is a global problem that urgently needs to be addressed. As reported, electrochemical catalytic technology under ambient conditions is of great interest for NO/NO removal. Additionally, the in situ utilization of surface-adsorbed nucleophilic intermediates generated from the electrochemical reduction of NO/NO can provide a sustainable strategy for building C-N bonds, upgrading waste NO/NO into value-added organic products, such as amines, oximes, amides, and amino acids, while remediating the environment. This review summarizes the most recent progress in the construction of nitrogen compounds by coupling electrochemical NO/NO reduction reactions with inorganic/organic substrates, focuses on understanding the adsorption-transformation mechanism during the NO/NO reduction process, and discusses multiple side reactions and complex pathways. Important strategies, such as coupled system development and catalyst preparation, are also presented to broaden the range of nitrogen compounds and improve yields. Finally, a few key challenges and future research directions for the development of efficient and low-cost electrochemical C-N coupling processes are discussed.
氮氧化物(NO)物种(NO和NO)以及硝酸盐/亚硝酸盐(如NO₂⁻和NO₃⁻)的排放已导致严重的水污染和气候挑战。如何去除这些废物是一个亟待解决的全球性问题。据报道,环境条件下的电化学催化技术对于去除NO/NO₂极具吸引力。此外,原位利用由NO/NO₂电化学还原产生的表面吸附亲核中间体可为构建C-N键、将废弃的NO/NO₂升级为增值有机产品(如胺、肟、酰胺和氨基酸)提供可持续策略,同时修复环境。本综述总结了通过将电化学NO/NO₂还原反应与无机/有机底物偶联来构建含氮化合物的最新进展,重点在于理解NO/NO₂还原过程中的吸附 - 转化机制,并讨论了多种副反应和复杂途径。还介绍了诸如耦合系统开发和催化剂制备等重要策略,以拓宽含氮化合物的范围并提高产率。最后,讨论了高效低成本电化学C-N偶联过程发展的一些关键挑战和未来研究方向。