Gas–solid interfacial modification of oxygen activity in layered oxide cathodes for lithium-ion batteries

Модификация активности кислорода на газотвёрдой границе раздела в слоистых оксидных катодах для литий-ионных аккумуляторов
Bao Qiu, Minghao Zhang, Lijun Wu, Jun Wang, Yonggao Xia, Danna Qian, Haodong Liu, Sunny Hy, Yan Chen, Ke An, Yimei Zhu, Zhaoping Liu, Ying Shirley Meng
2016-07-01

Li-rich layered oxidesgas–solid interface reactionlithium-ion batteriesoxygen activityoxygen vacancies
Lattice oxygen can play an intriguing role in electrochemical processes, not only maintaining structural stability, but also influencing electron and ion transport properties in high-capacity oxide cathode materials for Li-ion batteries. Here, we report the design of a gas-solid interface reaction to achieve delicate control of oxygen activity through uniformly creating oxygen vacancies without affecting structural integrity of Li-rich layered oxides. Theoretical calculations and experimental characterizations demonstrate that oxygen vacancies provide a favourable ionic diffusion environment in the bulk and significantly suppress gas release from the surface. The target material is achievable in delivering a discharge capacity as high as 301 mAh g(-1) with initial Coulombic efficiency of 93.2%. After 100 cycles, a reversible capacity of 300 mAh g(-1) still remains without any obvious decay in voltage. This study sheds light on the comprehensive design and control of oxygen activity in transition-metal-oxide systems for next-generation Li-ion batteries.
1
A gas–solid interfacial reaction uniformly creates oxygen vacancies in Li-rich layered oxides while preserving structural integrity.
2
After 100 cycles, the material retains 300 mAh g⁻¹ reversible capacity without obvious voltage decay.
3
The modified cathode delivers 301 mAh g⁻¹ discharge capacity with an initial Coulombic efficiency of 93.2%.
4
The study demonstrates comprehensive oxygen-activity control as a strategy for improving transition-metal-oxide cathodes for next-generation lithium-ion batteries.
5
Theoretical and experimental results show that oxygen vacancies facilitate bulk ionic diffusion and substantially suppress surface gas release.

Li-rich layered oxide cathode materials for lithium-ion batteries

The effects of uniformly created oxygen vacancies and controlled oxygen activity on ionic diffusion, surface gas release, structural integrity, and electrochemical performance

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2016-07-01
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Bao Qiu
Minghao Zhang
Lijun Wu
Jun Wang
Yonggao Xia
Danna Qian
Haodong Liu
Sunny Hy
Yan Chen
Ke An
Yimei Zhu
Zhaoping Liu
Ying Shirley Meng
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