A Chemical Sewing Enabled All‐In‐One Control Interface for Robust Zinc Metal Anodes

Author:

Huang Wei12,Yan Dongliang12,Li Qingning2,Lei Yusheng2,Yi Shunmin1,Zeng Yanfei1,You Hui1,Liu Qifan1,Zhong Lu1,Zhong Shengkui3,Ma Dingtao4,Zhang Peixin4ORCID

Affiliation:

1. Guangxi Colleges and Universities Key Laboratory of Environmental‐friendly Materials and New Technology for Carbon Neutralization Guangxi Key Laboratory of Advanced Structural Materials and Carbon Neutralization School of Materials and Environment Guangxi Minzu University Nanning 530105 P. R. China

2. Guangxi Key Laboratory of Information Materials Guilin University of Electronic Technology Guilin 541004 P. R. China

3. Yazhou Bay Innovation Research Institute College of Marine Science and Technology Hainan Tropical Ocean University Sanya 572022 P. R. China

4. Guangdong Flexible Wearable Energy and Tools Engineering Technology Research Center, College of Chemistry and Environmental Engineering Shenzhen University Shenzhen 518060 P. R. China

Abstract

AbstractDeveloping artificial protective layers is an effective strategy to address the issue of dendrites for aqueous Zn‐metal batteries (ZMBS). However, drawbacks such as rough microscopic morphology, excessive thickness, and single functionality remain, limiting the attainment of a stable zinc anode. Herein, a novel multifunctional organic–inorganic hybrid artificial protective layer is produced by splicing inorganic fragments onto organic materials in situ using a chemical sewing. The protective layer is well‐compatible and also retains the function of organic and inorganic materials, which not only inhibits dendrite production but also alleviates Zn corrosion. The Si─OH bond of the zincophilic group enables planar Zn deposition while forming hydrogen bonds with water, suppressing water activity near the anode and reducing the hydrogen evolution reaction. As expected, the Zn||Zn symmetric cell with a protective layer provides high cycling stability of more than 1960 h at 1 mA cm−2, which is about 28 times higher than that of the symmetric cell assembled without the protective layer. More importantly, a Zn||V2O5 full cell with an ultra‐long lifetime has been achieved with an artificial protective layer. This work provides a potential viable path to achieve long‐lived ZMBS.

Funder

National Natural Science Foundation of China

Natural Science Foundation of Guangxi Province

Natural Science Foundation of Hainan Province

Publisher

Wiley

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