Self‐Adjustment of Intrinsic Reaction Intermediate on Atomically Dispersed Co2–N6 Binuclear Sites Achieving Boosted Electrocatalytic Oxygen Reduction Performance

Author:

Lu Tingyu1,Zhou Qixing1,Li Jing1,Li Tongfei2,Gong Jiayue1,Zhang Songtao3,Pang Huan3,Xi Shibo4,Xu Lin1ORCID,Luo Gan5,Sun Dongmei1,Sun Kang67,Tang Yawen1

Affiliation:

1. Jiangsu Key Laboratory of New Power Batteries Jiangsu Collaborative Innovation Center of Biomedical Functional Materials School of Chemistry and Materials Science Nanjing Normal University Nanjing 210023 China

2. School of Chemistry and Chemical Engineering Nantong University Nantong 226019 China

3. School of Chemistry and Chemical Engineering Yangzhou University Yangzhou 225009 China

4. Institute of Chemical and Engineering Sciences, Agency for Science, Technology and Research Singapore 627833 Singapore

5. Henan Engineering Center of New Energy Battery Materials Henan D&A Engineering Center of Advanced Battery Materials College of Chemistry and Chemical Engineering Shangqiu Normal University Shangqiu 476000 China

6. Key Lab of Biomass Energy and Material Jiangsu Province Institute of Chemical Industry of Forest Products Chinese Academy of Forestry No. 16 Suojin5th Village Nanjing 210042 China

7. Key Laboratory of Functional Materials and Devices for Special Environments Xinjiang Technical Institute of Physics & Chemistry Chinese Academy of Sciences 40–1 South Beijing Road Urumqi Xinjiang 830011 China

Abstract

AbstractIsolated dual‐atom catalysts (DACs) have sparked enormous research enthusiasm in new energy community due to their great potentials to substitute the state‐of‐the‐art Pt‐based catalysts. Nevertheless, explicitly unraveling the underlying catalytic mechanisms is of critical significance for performance enhancement, yet remains a huge challenge. Herein, the study reports a reliable hard template‐mediated strategy to accomplish the construction of atomically isolated binuclear Co2‐N6 sites stabilized by ultrathin hollow carbon nanospheres (abbreviated as Co2‐DAs@CHNSs). Systematic spectroscopy characterization and theoretic calculations uncover that the Co2‐N6 sites follow a self‐adjusting mechanism caused by the intrinsic OH intermediate. The involvement of the ‐OH energy‐level modifier is found to induce the electron redistribution and alternation of antibonding orbital fillings for the generated Co2‐N6‐OH site, leading to reduced potential‐determining step (PDS) energy barrier, and thus boosted intrinsic activity. Consequently, the well‐managed Co2‐DAs@CHNSs afford outstanding oxygen reduction reaction (ORR) activity with a half‐wave potential of 0.87 V in alkaline electrolyte, overmatching the Pt benchmark. Furthermore, the Co2‐DAs@CHNSs‐assembled aqueous and all‐solid‐state rechargeable zinc–air batteries (ZABs) demonstrate high power density, large specific capacity, and robust stability. The findings offer an innovative avenue to rationally manipulate the electronic structures of active sites for DACs via a powerful self‐ligand modification strategy.

Funder

National Natural Science Foundation of China

National Key Research and Development Program of China

Natural Science Foundation of Henan Province

Publisher

Wiley

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