Crystalline Texture Reengineering of Zinc Powder‐Based Fibrous Anode for Remarkable Mechano‐Electrochemical Stability

Author:

Shao Yanyan12,Xia Zhou1,Xu Liang3,Zhang Xinyu4,Yang Dongzi1,Yang Zhicheng5,Luo Jinrong1,Xiao Gang2,Yang Yinan2,Su Yiwen1,Lu Guoqing5,Sun Jingyu1,Cheng Tao3,Shao Yuanlong2ORCID

Affiliation:

1. College of Energy Soochow Institute for Energy and Materials Innovations (SIEMIS) Key Laboratory of Advanced Carbon Materials and Wearable Energy Technologies of Jiangsu Province Soochow University Suzhou 215006 P. R. China

2. School of Materials Science and Engineering Peking University Beijing 100871 P. R. China

3. Institute of Functional Nano and Soft Materials (FUNSOM) Soochow University Suzhou 215123 P. R. China

4. Academy for Advanced Interdisciplinary Studies Peking University Beijing 100871 P. R. China

5. School of Materials Science and Engineering Shanghai University of Engineering Science Shanghai 201620 P. R. China

Abstract

AbstractThe challenge of inadequate mechano‐electrochemical stability in rechargeable fibrous Zn‐ion batteries (FZIBs) has emerged as a critical challenge for their broad applications. Traditional rigid Zn wires struggle to maintain a stable electrochemical interface when subjected to external mechanical stress. To address this issue, a wet‐spinning technique has been developed to fabricate Zn powder based fibrous anode, while carbon nanotubes (CNTs) introduced to enhance the spinnability of Zn powder dispersion. The followed annealing treatment has been conducted to reengineer the Zn crystalline texture with CNTs assisted surface tension regulation to redirect (002) crystallographic textural formation. The thus‐derived annealed Zn@CNTs fiber demonstrates great mechano‐electrochemical stability after a long‐term bending and electrochemical process. The fabricated FZIB demonstrates a remarkable durability, surpassing 800 h at 1 mA cm−2 and 1 mAh cm−2, with a marginal voltage hysteresis increase of 21.7 mV even after 100 twisting cycles under 180 degree twisting angle. The assembled FZIB full cell displays an 88.6% capacity retention even after a long cycle of a series of bending, knotting, and straightening deformation. It has been also woven into a 200 cm2 size textile to demonstrate its capability to integrate into smart textiles.

Funder

National Natural Science Foundation of China

Publisher

Wiley

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