Earthworm‐Inspired Co/Co3O4/CoF2@NSC Nanofibrous Electrocatalyst with Confined Channels for Enhanced ORR/OER Performance

Author:

Li Han1ORCID,Yan Guilong2,Zhao Haoyue3,Howlett Patrick C.4,Wang Xungai1ORCID,Fang Jian3

Affiliation:

1. The Hong Kong Polytechnic University JC STEM lab of Sustainable Fibers and Textiles School of Fashion and Textiles Hung Hom Kowloon Hong Kong 999077 China

2. School of New Energy and Materials Southwest Petroleum University Chengdu 610500 China

3. College of Textile and Clothing Engineering Soochow University Suzhou Jiangsu 215123 China

4. ARC Centre of Excellence for Electromaterials Science (ACES) Institute for Frontier Materials Deakin University Geelong VIC3200 Australia

Abstract

AbstractThe rational construction of highly active and durable oxygen‐reactive electrocatalysts for oxygen reduction/evolution reaction (ORR/OER) plays a critical role in rechargeable metal‐air batteries. It is pivotal to achieve optimal utilization of electrocatalytically active sites and valid control of the high specific internal surface area. Inspiration for designing electrocatalysts can come from nature, as it is full of precisely manipulated and highly efficient structures. Herein, inspired by earthworms fertilizing soil, a 3D carbon nanofibrous electrocatalyst with multiple interconnected nanoconfined channels, cobalt‐based heterojunction active particles and enriched N, S heteroatoms (Co/Co3O4/CoF2@NSC with confined channels) is rationally designed, showing superior bifunctional electrocatalytic activity in alkaline electrolyte, even outperforming that of benchmark Pt/C‐RuO2 catalyst. This work demonstrates a new method for porous structural regulation, in which the internal confined channels within the nanofibers are controllably formed by the spontaneous migration of cobalt‐based nanoparticles under a CO2 atmosphere. Theoretical analysis reveals that constructing Co/Co3O4/CoF2@NSC electrocatalyst with confined channels can greatly adjust the electron distribution, effectively lower the reaction barrier of inter‐mediate and reduce the OER/ORR overpotential. This work introduces a novel and nature‐inspired strategy for designing efficient bifunctional electrocatalysts with well‐designed architectures.

Funder

National Natural Science Foundation of China

Publisher

Wiley

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