Li Qiuyue, Liu Jingjing, Wu Ze, Deng Aomeng, Liu Jiani, Chen Tian, Wei Jianlong, Zhang Yiqiong, Liu Hanwen
College of Materials Science and Engineering, Changsha University of Science &Technology, Changsha, Hunan, 410114, P. R. China.
WA School of Mines, Minerals, Energy and Chemical Engineering (WASM-MECE), Curtin University, Perth, WA, 6102, Australia.
ChemSusChem. 2025 Mar 15;18(6):e202401865. doi: 10.1002/cssc.202401865. Epub 2024 Nov 15.
Urea, one of the most widely used nitrogen-containing fertilizers globally, is essential for sustainable agriculture. Improving its production is crucial for meeting the increasing demand for fertilizers. Electrocatalytic co-reduction of CO₂ and nitrogenous compounds (NO₂/NO₃) has emerged as a promising strategy for green and energy-efficient urea synthesis. However, challenges such as slow reaction kinetics and complex multi-step electron transfers have hindered the development of efficient urea synthesis methods. This review explores recent advances in the electrocatalytic C-N coupling process, focusing on bimetallic catalysts, metal oxide/hydroxide catalysts, and carbon-based catalysts. The review also discusses the future prospects of designing effective catalysts for electrocatalytic C-N coupling to improve urea synthesis.
尿素是全球使用最广泛的含氮肥料之一,对可持续农业至关重要。提高其产量对于满足对肥料日益增长的需求至关重要。二氧化碳和含氮化合物(NO₂/NO₃)的电催化共还原已成为绿色和节能尿素合成的一种有前景的策略。然而,诸如反应动力学缓慢和复杂的多步电子转移等挑战阻碍了高效尿素合成方法的发展。本文综述探讨了电催化C-N偶联过程的最新进展,重点关注双金属催化剂、金属氧化物/氢氧化物催化剂和碳基催化剂。本文综述还讨论了设计用于电催化C-N偶联以改善尿素合成的有效催化剂的未来前景。