Theory‐guided Design of Atomically Dispersed Dual‐Metal Catalysts for Superior Oxygen Reduction Reaction Activity

Author:

Yang Yuqi12,Wang Qing34,Mei Bingbao2,Han Zengyu56,Sun Fanfei2,Shang Lu3,Yang Shuai7,Wei Yao8,Wu Dongshuang6,Jiang Zheng9ORCID

Affiliation:

1. iHuman Institute ShanghaiTech University Shanghai 201210 P. R. China

2. Shanghai Synchrotron Radiation Facility Shanghai Advanced Research Institute Chinese Academy of Sciences Shanghai 201204 P. R. China

3. Key Laboratory of Photochemical Conversion and Optoelectronic Materials Technical Institute of Physics and Chemistry Chinese Academy of Sciences Beijing 100190 P.R. China

4. Institute for Catalysis Hokkaido University Sapporo 001-0021 Japan

5. Department of Environmental Science and Engineering School of Energy and Power Engineering Xi'an Jiaotong University Xi'an 710049 P. R. China

6. School of Materials and Engineering Nanyang Technological University Singapore 639798 Singapore

7. School of Physical Science and Technology ShanghaiTech University Shanghai 201210 P. R. China

8. Shanghai Institute of Applied Physics Chinese Academy of Sciences 201800 Shanghai P. R. China

9. National Synchrotron Radiation Laboratory University of Science and Technology of China Hefei 230026 P. R. China

Abstract

AbstractThe widespread application of electrochemical energy conversion devices, such as proton exchange membrane fuel cells, is hindered by the kinetically sluggish oxygen reduction reaction (ORR) at the cathode. Transition‐metal and nitrogen codoped carbon materials (TM−N−C) are among the most promising catalysts to solve this problem. Particularly, dual‐metal TM−N−C have already displayed excellent performance. However, further knowledge on the reaction mechanism and the structure−activity relationship is still required. In this study, we established three dual‐metal TM−N−C models (FeMn−N−C, FeCo−N−C, and FeNi−N−C) to investigate the electronic interaction between the metallic sites and their corresponding adsorption strength for oxygenated intermediates in ORR electrocatalysis. Then, using density functional theory calculations, we determined that the ORR activity of the dual‐metal TM−N−C models followed the order of FeCo−N−C > FeNi−N−C > FeMn−N−C. We confirmed the theoretically predicted activity by synthesizing atomically dispersed FeMn−N−C, FeCo−N−C, and FeNi−N−C catalysts using metal‐organic framework precursors, among which FeCo−N−C showed the best results in terms of ORR onset potential and half‐wave potential (0.92 and 0.81 V vs. the reference hydrogen electrode in 0.1 M HClO4, respectively.). The results demonstrate the feasibility of the theory‐guided rational design of efficient dual‐metal catalysts for ORR electrocatalysis.

Funder

National Natural Science Foundation of China

Publisher

Wiley

Subject

Inorganic Chemistry,Organic Chemistry,Physical and Theoretical Chemistry,Catalysis

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