Customization of Manganese Oxide Cathodes via Precise Electrochemical Lithium‐Ion Intercalation for Diverse Zinc‐Ion Batteries

Author:

Zhao Jiangqi12,Yu Haojie1,Yang Ruijie2,Tan Feipeng1,Zhou Zhan3,Yan Weibin1,Zhang Qingyong2,Mei Liang2,Zhou Jiang4,Tan Chaoliang5,Zeng Zhiyuan26ORCID

Affiliation:

1. College of Materials Science and Engineering Sichuan University Chengdu 610065 China

2. Department of Materials Science and Engineering, and State Key Laboratory of Marine Pollution City University of Hong Kong Hong Kong 999077 China

3. College of Chemistry and Chemical Engineering Henan Key Laboratory of Function‐Oriented Porous Materials Luoyang Normal University Luoyang 471934 China

4. School of Materials Science and Engineering Hunan Provincial Key Laboratory of Electronic Packaging and Advanced Functional Materials Central South University Changsha Hunan 410083 China

5. Department of Electrical and Electronic Engineering The University of Hong Kong Pokfulam Road Hong Kong 999077 China

6. Shenzhen Research Institute City University of Hong Kong Shenzhen 518057 China

Abstract

AbstractManganese oxide‐based aqueous zinc‐ion batteries (ZIBs) are attractive energy storage devices, owing to their good safety, low cost, and ecofriendly features. However, various critical issues, including poor conductivity, sluggish reaction kinetics, and unstable structure still restrict their further development. Oxygen defect engineering is an effective strategy to improve the electrochemical performance of manganese oxides, but challenging in the accurate regulation of oxygen defects. In this work, an effective and controllable defect engineering strategy‐controllable electrochemical lithium‐ion intercalation – is proposed to tackle this issue. The incorporation of lithium ions and oxygen defects can promote the conductivity, lattice spacing, and structural stability of Mn2O3 (MO), thus improving its capacity (232.7 mAh g−1), rate performance, and long‐term cycling stability (99.0% capacity retention after 3000 cycles). Interestingly, the optimal ratio of intercalated lithium‐ion varies at different temperature or mass‐loading of MO, which provides the possibility to customize diverse ZIBs to meet different application conditions. In addition, the fabricated ZIBs present good flexibility, superior safety, and admirable adaptability under extreme temperatures (−20–100 °C). This work provides an inspiration on the structural customization of metal oxide nanomaterials for diverse ZIBs, and sheds light on the construction of future portable electronics.

Funder

National Natural Science Foundation of China

Fundamental Research Funds for the Central Universities

Publisher

Wiley

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