Abstract

Electrochemical synthesis is a promising way for sustainable urea production, yet the exact mechanism has not been fully revealed. Herein, we explore the mechanism of electrochemical coupling of nitrite and carbon dioxide on Cu surfaces towards urea synthesis on the basis of a constant-potential method combined with an implicit solvent model. The working electrode potential, which has normally overlooked, is found influential on both the reaction mechanism and activity. The further computational study on the reaction pathways reveals that *CO-NH and *NH-CO-NH as the key intermediates. In addition, through the analysis of turnover frequencies under various potentials, pressures, and temperatures within a microkinetic model, we demonstrate that the activity increases with temperature, and the Cu(100) shows the highest efficiency towards urea synthesis among all three Cu surfaces. The electric double-layer capacitance also plays a key role in urea synthesis. Based on these findings, we propose two essential strategies to promote the efficiency of urea synthesis on Cu electrodes: increasing Cu(100) surface ratio and elevating the reaction temperature.

Electrochemical urea synthesis presents a promising alternative to conventional synthesis methods, yet the elusive mechanism hindered its development. Here, the authors take copper as an example to explore the potential and electric double-layer effect in electrocatalytic urea synthesis, and reveal two essential strategies to promote the efficiency of urea synthesis.

Details

Title
Potential and electric double-layer effect in electrocatalytic urea synthesis
Author
Wu, Qian 1   VIAFID ORCID Logo  ; Dai, Chencheng 2 ; Meng, Fanxu 1   VIAFID ORCID Logo  ; Jiao, Yan 3   VIAFID ORCID Logo  ; Xu, Zhichuan J. 4   VIAFID ORCID Logo 

 Nanyang Technological University, 50 Nanyang Avenue, School of Material Science and Engineering, Singapore, Singapore (GRID:grid.59025.3b) (ISNI:0000 0001 2224 0361) 
 Nanyang Technological University, 50 Nanyang Avenue, School of Material Science and Engineering, Singapore, Singapore (GRID:grid.59025.3b) (ISNI:0000 0001 2224 0361); The Cambridge Centre for Advanced Research and Education in Singapore, 1 CREATE way, Singapore, Singapore (GRID:grid.510501.0) 
 The University of Adelaide, School of Chemical Engineering, Adelaide, Australia (GRID:grid.1010.0) (ISNI:0000 0004 1936 7304) 
 Nanyang Technological University, 50 Nanyang Avenue, School of Material Science and Engineering, Singapore, Singapore (GRID:grid.59025.3b) (ISNI:0000 0001 2224 0361); The Cambridge Centre for Advanced Research and Education in Singapore, 1 CREATE way, Singapore, Singapore (GRID:grid.510501.0); Interdisciplinary Graduate School, Nanyang Technological University, Energy Research Institute @ Nanyang Technological University, ERI@N, Singapore, Singapore (GRID:grid.59025.3b) (ISNI:0000 0001 2224 0361); Nanyang Technological University, 50 Nanyang Avenue, Center for Advanced Catalysis Science and Technology, Singapore, Singapore (GRID:grid.59025.3b) (ISNI:0000 0001 2224 0361) 
Pages
1095
Publication year
2024
Publication date
2024
Publisher
Nature Publishing Group
e-ISSN
20411723
Source type
Scholarly Journal
Language of publication
English
ProQuest document ID
2922682213
Copyright
© The Author(s) 2024. This work is published under http://creativecommons.org/licenses/by/4.0/ (the “License”). Notwithstanding the ProQuest Terms and Conditions, you may use this content in accordance with the terms of the License.