Electrochemical Nitrate Reduction to Ammonia on CuCo Nanowires at Practical Level

Author:

Zhang Kouer1,Sun Pengting2,Huang Yulun3,Tang Mingcong1,Zou Xiaohong1,Pan Zhefei45,Huo Xiaoyu1,Wu Jie1,Lin Chunche3,Sun Zhongti2,Wan Yangyang2,Zhang Xiao1,An Liang16ORCID

Affiliation:

1. Department of Mechanical Engineering The Hong Kong Polytechnic University Hung Hom Kowloon Hong Kong SAR 999077 China

2. Institute for Advanced Materials School of Materials Science and Engineering Jiangsu University Zhenjiang Jiangsu 212013 China

3. Institute of Organic and Polymeric Materials National Taipei University of Technology Taipei 106 Taiwan

4. Key Laboratory of Low‐grade Energy Utilization Technologies and Systems (Chongqing University) Ministry of Education of China Chongqing University Chongqing 400044 China

5. Institute of Engineering Thermophysics School of Energy and Power Engineering Chongqing University Chongqing 400044 China

6. Research Institute for Smart Energy The Hong Kong Polytechnic University Hung Hom Kowloon Hong Kong SAR 999077 China

Abstract

AbstractElectrochemical reduction of nitrate (NO3RR) holds great promise for environmentally friendly ammonia production. Tandem catalysis is a promising strategy for boosting the NO3RR and inhibiting side effects, but it is still challenged by lacking well‐designed catalysts to drive this catalytic process. Herein, the study develops the CuCo branched nanowires (CuCo NW) catalyst, which efficiently converts NO3 to NH3 on Co (111) and Cu (111) crystal facets through a tandem catalysis mechanism. The in situ grown CuCo NW on Cu foam demonstrates a remarkable Faraday efficiency of 90.3% at 1.0 A cm−2 and maintains stable operation for 200 h at 100 and 200 mA cm−2 in a flow reactor. Density functional theory calculations suggest that the initial absorption and subsequent deoxygenation of *NO3 on Co (111) leading to the formation of *NO2, followed by its transfer to Cu (111) and further conversion to *NH3, establish an optimal pathway by managing rate‐determining steps on individual surfaces for NO3RR. To showcase the practical application of the catalyst, the study further develops a scaling‐up prototype reactor for continuous ammonia production, realizing the gram‐level yield rate of 1474.09 mg h−1 and Faraday efficiency of 91.26% at practical‐level 20.0 A.

Funder

National Natural Science Foundation of China

Hong Kong Polytechnic University

Senior Talent Foundation of Jiangsu University

Publisher

Wiley

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