Carbon Fiber Film with Multi‐Hollow Channels to Expedite Oxygen Electrocatalytic Reaction Kinetics for Flexible Zn–Air Battery

Author:

Li Tingzhen1,Liu Yijun12,Huang Yongfa1,Zhang Lei1,Chen Zehong1,Yang Wu1ORCID,Shi Ge1,Zhou Jiawei1,Zou Ren1,Gan Jianyun1,Zhong Linxin1,Peng Xinwen1ORCID

Affiliation:

1. State Key Laboratory of Pulp and Paper Engineering School of Light Industry and Engineering South China University of Technology Guangzhou 510641 China

2. Hainan Key Laboratory of Storage & Processing of Fruits and Vegetables Agricultural Products Processing Research Institute Chinese Academy of Tropical Agricultural Sciences Zhanjiang Guangdong 524001 China

Abstract

AbstractThe high oxygen electrocatalytic overpotential of flexible cathodes due to sluggish reaction kinetics result in low energy conversion efficiency of wearable zinc–air batteries (ZABs). Herein, lignin, as a 3D flexible carbon‐rich macromolecule, is employed for partial replacement of polyacrylonitrile and constructing flexible freestanding air electrodes (FFAEs) with large amount of mesopores and multi‐hollow channels via electrospinning combined with annealing strategy. The presence of lignin with disordered structure decreases the graphitization of carbon fibers, increases the structural defects, and optimizes the pore structure, facilitating the enhancement of electron‐transfer kinetics. This unique structure effectively improves the accessibility of graphitic‐N/pyridinic‐N with oxygen reduction reaction (ORR) activity and pyridinic‐N with oxygen evolution reaction (OER) activity for FFAEs, accelerating the mass transfer process of oxygen‐active species. The resulting N‐doped hollow carbon fiber films (NHCFs) exhibit superior bifunctional ORR/OER performance with a low potential difference of only 0.60 V. The rechargeable ZABs with NHCFs as metal‐free cathodes possess a long‐term cycling stability. Furthermore, the NHCFs can be used as FFAEs for flexible ZABs which have a high specific capacity and good cycling stability under different bending states. This work paves the way to design and produce highly active metal‐free bifunctional FFAEs for electrochemical energy devices.

Funder

National Key Research and Development Program of China

National Natural Science Foundation of China

Basic and Applied Basic Research Foundation of Guangdong Province

State Key Laboratory of Pulp and Paper Engineering

National Program for Support of Top-notch Young Professionals

China Postdoctoral Science Foundation

Publisher

Wiley

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