Role of aluminum doping in enhancing high-temperature stability of lithium-rich cathodesopen access
- Authors
- Kim, Min-Ho; Singh, Aditya Narayan; Ha, Miran; Lee, Wang Geun; Pourasad, Saeed; Meena, Abhishek; Jang, Haeseong; Seo, Jeongwoo; Park, Jaehyun; Kang, Seok Ju; Nam, Kyung-Wan; Shin, Tae Joo; Lee, Hyun-Wook; Kim, Kwang S.
- Issue Date
- Nov-2025
- Publisher
- Elsevier B.V.
- Keywords
- Aluminum doping; High-capacity cathode; High-temperature performance; High-voltage performance; Lithium-ion battery; Transition metal migration
- Citation
- Chemical Engineering Journal, v.524, pp 1 - 14
- Pages
- 14
- Indexed
- SCIE
SCOPUS
- Journal Title
- Chemical Engineering Journal
- Volume
- 524
- Start Page
- 1
- End Page
- 14
- URI
- https://scholarworks.dongguk.edu/handle/sw.dongguk/61889
- DOI
- 10.1016/j.cej.2025.169609
- ISSN
- 1385-8947
1873-3212
- Abstract
- Li-rich layered oxides have emerged as promising high-energy-density cathode materials; however, their performance at elevated temperatures (>50 °C) is severely limited by irreversible anion redox reactions including oxygen release and structural degradation associated with transition metal migration. While aluminum-doping has been theoretically proposed to enhance the structural and electrochemical stability of Li-rich cathodes, its experimental validation under high-temperature conditions (e.g., 60 °C) has remained elusive. Here, we present the comprehensive experimental validation of Al-doping effects on high-temperature stability in 4d-metal-based Li-rich cathodes, specifically Li₁.₂₂Ru₀.₆₁Ni₀.₁₀Al₀.₀₅O₂ (LRNAO). Notably, Al-doped LRNAO retains 97.7 % of its initial specific capacity (~222 mAh g−1) after 50 cycles at 60 °C, representing unprecedented thermal stability for Li-rich cathodes. Mechanistic studies reveal that Al-doping provides thermal stability through a dual-function mechanism: (1) oxygen stabilization via strong Al[sbnd]O bonds that suppress O[sbnd]O dimerization and (2) facilitation of reversible Ni migration during cycling through creation of thermally stable local environments. Al-doping prevents spinel-like phase formation during prolonged cycling, maintaining the layered structure integrity even after 100 cycles at elevated temperature. It enables a remarkable combination of high-temperature stability and high capacity, setting a new benchmark for Li-rich layered cathodes. This work provides fundamental insights into temperature-dependent degradation mechanisms and offers practical design strategies for the development of high-energy-density lithium-ion batteries operable under demanding thermal conditions. © 2025 Elsevier B.V., All rights reserved.
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Collections - College of Engineering > Department of Energy and Materials Engineering > 1. Journal Articles

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