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Lee, Hyeon Jeong
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Structural Evolution of Mg-Doped Single-Crystal LiCoO2 Cathodes: Importance of Morphology and Mg-Doping Sites

Author(s)
Bae, Jin-GyuLee, Ju-HyeonKim, Min SungKim, Byung GonLee, Hyeon JeongLee, Ji Hoon
Issued Date
2023-02
DOI
10.1021/acsami.2c17993
URI
https://scholarworks.unist.ac.kr/handle/201301/65336
Citation
ACS APPLIED MATERIALS & INTERFACES, v.15, no.6, pp.7639 - 8794
Abstract
Layered lithium cobalt oxide (LiCoO2, LCO), which serves as a structural motif for the widely adopted layered cathodes in lithium-ion batteries, has a long history, and its unstable phase transition during high-voltage operation (similar to 4.5 V) remains an intractable problem. Many research strategies, such as surface coating and immobile ion doping, have been proposed to address this issue, but a clear understanding of the effects has not been demonstrated because of various potential parameters (e.g., particle size, shape, and dopant content). Herein, we report a molten salt synthesis method that produces sphere-like single-crystal magnesium (Mg)-doped LCO. In situ X-ray diffraction and X-ray absorption fine structure analyses confirmed that the lattice strain was effectively alleviated by the effects of both the particle shape and Mg doping compared to the plate-like and sphere-like single-crystal LCO samples. Furthermore, the preference for Mg doping in the Co site (3b) rather than in the Li site (3a) in the LCO framework is systematically revealed, and a clear understanding of Mg doping that suppresses the monoclinic phase transition is discussed in detail.
Publisher
AMER CHEMICAL SOC
ISSN
1944-8244
Keyword (Author)
lithium cobalt oxideMg-dopingphase transitionX-ray diffractionX-ray absorption fine structure
Keyword
ENHANCED ELECTROCHEMICAL PERFORMANCELITHIUM COBALT OXIDEX-RAY-DIFFRACTIONHIGH-CAPACITYPHASE-TRANSITIONREDOX REACTIONSHIGH-POWERTHIN-FILMBEHAVIORORIENTATION

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