Surface Miscible Structure Modulation of Li‐Rich Cathodes by Dual Gas Surface Treatment for Super High‐Temperature Electrochemical Performance

Author:

Yang Yaru1,Zhu Qingjun1,Yang Jiayi2,Liu Han3,Ren Yang2,Sui Xulei1,Wang Panpan1,Sun Gang14,Wang Zhenbo145ORCID

Affiliation:

1. College of Materials Science and Engineering Shenzhen University Shenzhen 518071 China

2. Department of Physics City University of Hong Kong Hong Kong 999077 China

3. Department of Materials Science and Engineering City University of Hong Kong Hong Kong 999077 China

4. College of Physics and Optoelectronic Engineering Shenzhen University Shenzhen 518071 China

5. MIIT Key Laboratory of Critical Materials Technology for New Energy Conversion and Storage State Key Lab of Urban Water Resource and Environment School of Chemistry and Chemical Engineering Harbin Institute of Technology Harbin 150001 China

Abstract

AbstractLi‐rich manganese base oxides (LRNCM) are regarded as one of the most promising cathode materials among next‐generation high‐energy density Li‐ion batteries due to the coupling effect of anion and cation redox. However, serious oxygen release, surface structure corrosion, and transformation seriously damage their electrochemical performance and restrict their commercialization process. Herein, a dual gaseous surface treatment strategy with ammonium bicarbonate is designed to reconstruct the surface chemical and structural characteristics of LRNCM. As a result, an enriched oxygen vacancies mixed‐phase surface layer is achieved, which contains spinel phase and cation‐disordered phase. The integration of the surface mixed phase effectively inhibits irreversible oxygen loss, prevents electrode corrosion, and promotes fast Li‐ion diffusion. Accordingly, the modified cathode exhibits excellent specific capacity, high‐rate capability, and superior cycle life at both 25 and 60 °C. Particularly at high temperatures, it achieves impressive performance: initial coulombic efficiency (82.0 vs 74.4%), cycling stability at 1 C after 100 cycles (92.6 vs 83.8%), and rate performance at 5 C (56.0 vs 48.7%). This reconfiguration approach introduces a novel idea for the design of cathode material interfaces.

Funder

National Natural Science Foundation of China

Fundamental Research Funds for the Central Universities

Publisher

Wiley

Subject

Electrochemistry,Condensed Matter Physics,Biomaterials,Electronic, Optical and Magnetic Materials

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