Electrocatalytic Urea Synthesis with 63.5 % Faradaic Efficiency and 100 % N‐Selectivity via One‐step C−N coupling

Author:

Zhang Xiaoran12,Zhu Xiaorong34,Bo Shuowen5,Chen Chen1ORCID,Cheng Kai6,Zheng Jianyun1,Li Shuang1,Tu Xiaojin1,Chen Wei1,Xie Chao1,Wei Xiaoxiao1,Wang Dongdong1,Liu Yingying1,Chen Pinsong2,Jiang San Ping27,Li Yafei4,Liu Qinghua5,Li Conggang6,Wang Shuangyin1

Affiliation:

1. State Key Laboratory of Chem/Bio-Sensing and Chemometrics, College of Chemistry and Chemical Engineering Hunan University Changsha China

2. WA School of Mines: Minerals, Energy & Chemical Engineering Curtin University Perth, Western Australia 6102 Australia

3. School of Chemistry and Chemical Engineering Nantong University Nantong China

4. College of Chemistry and Materials Science Nanjing Normal University Nanjing China

5. National Synchrotron Radiation Laboratory University of Science and Technology of China Hefei China

6. Key Laboratory of Magnetic Resonance in Biological Systems, State Key Laboratory of Magnetic Resonance and Atomic and Molecular Physics, National Center for Magnetic Resonance in Wuhan Collaborative Innovation Center of Chemistry for Life Sciences, Wuhan Institute of Physics and Mathematics Chinese Academy of Sciences Wuhan China

7. Foshan Xianhu Laboratory of the Advanced Energy Science and Technology Guangdong Laboratory Foshan China

Abstract

AbstractElectrocatalytic urea synthesis via coupling N2 and CO2 provides an effective route to mitigate energy crisis and close carbon footprint. However, the difficulty on breaking N≡N is the main reason that caused low efficiencies for both electrocatalytic NH3 and urea synthesis, which is the bottleneck restricting their industrial applications. Herein, a new mechanism to overcome the inert of the nitrogen molecule was proposed by elongating N≡N instead of breaking N≡N to realize one‐step C−N coupling in the process for urea production. We constructed a Zn−Mn diatomic catalyst with axial chloride coordination, Zn−Mn sites display high tolerance to CO poisoning and the Faradaic efficiency can even be increased to 63.5 %, which is the highest value that has ever been reported. More importantly, negligible N≡N bond breakage effectively avoids the generation of ammonia as intermediates, therefore, the N‐selectivity in the co‐electrocatalytic system reaches100 % for urea synthesis. The previous cognition that electrocatalysts for urea synthesis must possess ammonia synthesis activity has been broken. Isotope‐labelled measurements and Operando synchrotron‐radiation Fourier transform infrared spectroscopy validate that activation of N−N triple bond and nitrogen fixation activity arise from the one‐step C−N coupling process of CO species with adsorbed N2 molecules.

Funder

National Key Research and Development Program of China

National Natural Science Foundation of China

China Postdoctoral Science Foundation

Publisher

Wiley

Subject

General Chemistry,Catalysis

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