Journals

Laser Photochemistry Laboratory

227. Electrochemical strategies for urea synthesis via C–N coupling of integrated carbon oxide–nitrogenous molecules reduction
Author
Jayaraman Theerthagiri†, K. Karuppasamy†, Gilberto Maia†, M. L. Aruna Kumari†, Ahreum Min†, Cheol Joo Moon†, Marciélli K. R. Souza, Neshanth Vadivel, Arun Prasad Murthy*, Soorathep Kheawhom*, Akram Alfantazi, Myong Yong Choi*
Journal

Journal of Materials Chemistry A
Vol, Part
12
Page Number
20691-20716 (2024)
Publication Year

03 July 2024
IF
IF(2023): 10.7
JCR
JCR: 90.9%
Acknowledgements
2019R1A6C1010042, 2022R1A2C2010686, 2022R1A4A3033528, 2021R1C1C2010726, RS-2024-00405324, and RS-2024-00359478

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Abstract:

The electrochemical coupling of C and N has sparked considerable research attention, heralded as a capable method to curb carbon and nitrogen emissions while concurrently storing surplus renewable electricity in valuable chemical compounds such as urea, amides, and amines. Electrocatalytic urea synthesis via a C–N coupling reaction (CNCR) comprises the electroreduction of CO 2 alongside the coreduction of various inorganic nitrogen sources (NO 3-, NO 2-, N 2, and NO).

However, the main hurdles for this electrochemical C–N coupling are the inert nature of the involved molecules and the prevalence of competing side reactions.

This review comprehensively examines recent advancements in electrocatalytic C–N coupling, emphasizing the various mechanistic pathways involved in urea production, including CO 2 reduction and NO 3 reduction reaction. Additionally, electrochemical key performance parameters and future advancement directions for electrocatalytic urea production are prospected. The electrochemical CNCR accomplishes effective resource use and delivers direction and reference for molecular coupling reactions. The insights gleaned from these observations may illuminate the development of effective catalysts in forthcoming research and expand the potential applications in green urea production.