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One-Pot Spray Pyrolysis Fabrication of Multi-Phase Lithium Manganese Oxide Microsphere Cathodes for Enhanced Lithium-Ion Battery Performance
- Choi, Jae Hyeon;
- Lee, Yeon Oh;
- Kim, Kyoung Sun;
- Kang, Yun Chan;
- Cho, Jung Sang;
- 외 3명
WEB OF SCIENCE
7SCOPUS
6초록
Spinel-type lithium manganese oxide (LMO) cathodes offer low cost, environmental benignity, and strong thermal safety, making them attractive for fast-charge lithium-ion batteries. Their widespread adoption, however, has been hindered by structural degradation associated with the Jahn-Teller distortion of Mn3+. Here, we report for the first time a rapid, single-step spray pyrolysis route that produces multi-phase microspheres comprising Sr-doped LiMn2O4 spinel, a minor Sr2Mn2O5 phase, and a C2/m layered Li2MnO3-like structure, all crystallized directly from a single precursor solution without post-treatment. This continuous aerosol process enables uniform Sr incorporation, precise morphological control, and manufacturing scalability. The synergistic coexistence of these phases provides multiple benefits: Sr doping lowers the Mn3+ fraction, suppresses lattice distortion, and stabilizes the spinel framework; the Sr2Mn2O5 phase refines particle morphology and mitigates mechanical stress during cycling; and the layered Li2MnO3-like domains enhance structural stability, diversify Li+ diffusion pathways, and suppress Mn dissolution and electrolyte side reactions. As a result, the composite cathode delivers improved electrochemical performance, retaining 81.72 mA h g-1 after 400 cycles at 1 C and 76.78 mA h g-1 at 5 C, demonstrating that rapid, single-step spray pyrolysis is an effective and scalable strategy for robust, high-voltage spinel cathodes.
키워드
- 제목
- One-Pot Spray Pyrolysis Fabrication of Multi-Phase Lithium Manganese Oxide Microsphere Cathodes for Enhanced Lithium-Ion Battery Performance
- 저자
- Choi, Jae Hyeon; Lee, Yeon Oh; Kim, Kyoung Sun; Kang, Yun Chan; Cho, Jung Sang; Kim, Hyungsub; Jeong, Sang Mun; Park, Gi Dae
- 발행일
- 2026-01-08
- 유형
- Article; Early Access