Surface Reconstruction Regulation of Co3N Through Heterostructure Engineering Toward Efficient Oxygen Evolution Reaction

Author:

Zeng Ye1,Zheng Jiaxian2,Zhang Heru2,Yao Fen3,Deng Dingrong1,Wu Qihui1,Makgwane Peter R.4,Liang Hanfeng2ORCID

Affiliation:

1. Key Laboratory of Energy Cleaning Utilization Development Cleaning Combustion and Energy Utilization Research Center of Fujian Province Xiamen Key Laboratory of Marine Corrosion and Smart Protective Materials College of Marine Equipment and Mechanical Engineering Jimei University Xiamen Fujian 361021 China

2. State Key Laboratory of Physical Chemistry of Solid Surfaces College of Chemistry and Chemical Engineering Xiamen University Xiamen 361005 China

3. Laboratory of Preparation and Applications of Environmentally Friendly Material of the Ministry of Education College of Chemistry Jilin Normal University Changchun 130103 China

4. Institute for Catalysis and Energy Solutions (ICES) College of Science Engineering and Technology University of South Africa Florida 1710 South Africa

Abstract

AbstractOxygen evolution reaction (OER) electrocatalysts generally experience structural and electronic modifications during electrocatalysis. This phenomenon, referred to as surface reconstruction, results in the formation of catalytically active species that act as real OER sites. Controlling surface reconstruction therefore is vital for enhancing the OER performance of electrocatalysts. In this study, a new approach is introduced of heterostructure engineering to facilitate the surface reconstruction of target catalysts. Using MnCo carbonate hydroxide (MnCo─CH)@Co3N as a demonstration, it is discovered that the surface reconstruction occurs more readily and rapidly on MnCo─CH@Co3N than on Co3N. More interestingly, during the reconstruction process, Mn species migrate to the surface, enabling the in situ formation of highly active Mn‐doped CoOOH. Consequently, the MnCo─CH@Co3N catalyst after reconstruction exhibits a low overpotential of 257 mV at 10 mA cm−2, compared to 379 mV of individual Co3N. This work offers fresh perspectives on understanding the enhanced OER performance of heterostructure electrocatalysts and the role of heterostructure in promoting surface reconstruction.

Funder

National Natural Science Foundation of China

Fundamental Research Funds for the Central Universities

National Key Research and Development Program of China

Jimei University

Publisher

Wiley

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