Mitigated Oxygen Loss in Lithium‐Rich Manganese‐Based Cathode Enabled by Strong Zr–O Affinity

Author:

Wang Guan12,Xie Chenghao1,Wang Hong123,Li Quan12,Xia Fanjie12,Zeng Weihao12,Peng Haoyang12,Van Tendeloo Gustaaf24,Tan Gangjian1,Tian Jinsai1,Wu Jinsong12ORCID

Affiliation:

1. State Key Laboratory of Advanced Technology for Materials Synthesis and Processing International School of Materials Science and Engineering Wuhan University of Technology Wuhan Hubei 430070 P. R. China

2. Nanostructure Research Center (NRC) Wuhan University of Technology Wuhan Hubei 430070 P. R. China

3. School of Mathematics and Physics Jingchu University of Technology Jingmen Hubei 448000 P. R. China

4. EMAT (Electron Microscopy for Materials Science) University of Antwerp Antwerpen 2000 Belgium

Abstract

AbstractOxygen loss is a serious problem of lithium‐rich layered oxide (LLO) cathodes, as the high capacity of LLO relies on reversible oxygen redox. Oxygen release can occur at the surface leading to the formation of spinel or rock salt structures. Also, the lattice oxygen will usually become unstable after long cycling, which remains a major roadblock in the application of LLO. Here, it is shown that Zr doping is an effective strategy to retain lattice oxygen in LLO due to the high affinity between Zr and O. A simple sol‐gel method is used to dope Zr4+ into the LLOs to adjust the local electronic structure and inhibit the diffusion of oxygen anions to the surface during cycling. Compared with untreated LLOs, LLO–Zr cathodes exhibit a higher cycling stability, with 94% capacity retention after 100 cycles at 0.4 C, up to 223 mAh g−1 at 1 C, and 88% capacity retention after 300 cycles. Theoretical calculations show that due to the strong Zr–O covalent bonding, the formation energy of oxygen vacancies has effectively increased and the loss of lattice oxygen under high voltage can be suppressed. This study provides a simple method for developing high‐capacity and cyclability Li‐rich cathode materials for lithium‐ion batteries.

Funder

National Natural Science Foundation of China

Publisher

Wiley

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