Mechanism of C-N bonds formation in electrocatalytic urea production revealed by ab initio molecular dynamics simulation

被引:0
作者
Xin Liu
Yan Jiao
Yao Zheng
Mietek Jaroniec
Shi-Zhang Qiao
机构
[1] The University of Adelaide,School of Chemical Engineering and Advanced Materials
[2] The University of Adelaide,Centre for Materials in Energy and Catalysis
[3] Kent State University,Department of Chemistry and Biochemistry & Advanced Materials and Liquid Crystal Institute
来源
Nature Communications | / 13卷
关键词
D O I
暂无
中图分类号
学科分类号
摘要
Electrosynthesis of urea from CO2 and NOX provides an exceptional opportunity for human society, given the increasingly available renewable energy. Urea electrosynthesis is challenging. In order to raise the overall electrosynthesis efficiency, the most critical reaction step for such electrosynthesis, C-N coupling, needs to be significantly improved. The C-N coupling can only happen at a narrow potential window, generally in the low overpotential region, and a fundamental understanding of the C-N coupling is needed for further development of this strategy. In this regard, we perform ab initio Molecular Dynamics simulations to reveal the origin of C-N coupling under a small electrode potential window with both the dynamic nature of water as a solvent, and the electrode potentials considered. We explore the key reaction networks for urea formation on Cu(100) surface in neutral electrolytes. Our work shows excellent agreement with experimentally observed selectivity under different potentials on the Cu electrode. We discover that the *NH and *CO are the key precursors for C-N bonds formation at low overpotential, while at high overpotential the C-N coupling occurs between adsorbed *NH and solvated CO. These insights provide vital information for future spectroscopic measurements and enable us to design new electrochemical systems for more value-added chemicals.
引用
收藏
相关论文
共 165 条
[21]  
Zheng Y(2003)Electrochemical synthesis of urea on reduction of carbon dioxide with nitrate and nitrite ions using Cu-loaded gas-diffusion electrode Electrochim. Acta 48 3953-114
[22]  
Jaroniec M(2017)Electrochemical synthesis of urea at gas-diffusion electrodes III. simultaneous reduction of carbon dioxide and nitrite ions with various metal catalysts ChemSusChem 10 3999-851
[23]  
Qiao SZ(2020)Electrochemical synthesis of urea at gas-diffusion electrodes J. Colloid Interface Sci. 577 109-479
[24]  
Liu X(2019)Electrochemical synthesis of urea at gas-diffusion electrodes Nat. Chem. 11 846-9303
[25]  
Jiao Y(2011)Simultaneous reduction of carbon dioxide and nitrate ions at gas-diffusion electrodes with various metallophthalocyanine catalysts Nature 480 471-17892
[26]  
Zheng Y(2013)Electrocatalytic conversion of carbon dioxide and nitrate ions to urea by a titania-nafion composite electrode Chem. Soc. Rev. 42 9283-3654
[27]  
Qiao S-Z(2004)Oxygen vacancies enhanced cooperative electrocatalytic reduction of carbon dioxide and nitrite ions to urea J. Phys. Chem. B 108 17886-1315
[28]  
Suryanto BHR(2019)Formation of carbon-nitrogen bonds in carbon monoxide electrolysis J. Mater. Chem. A 7 3648-2037
[29]  
Skulason E(2010)Rethinking amide bond synthesis Energy Environ. Sci. 3 1311-1477
[30]  
van Langevelde PH(2015)C-N bond forming cross-coupling reactions: an overview J. Phys. Chem. Lett. 6 2032-2462