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Scalable Precise Nanofilm Coating and Gradient Al Doping Enable Stable Battery Cycling of LiCoO2 at 4.7 V.
Yao, Jia; Li, Yuyu; Xiong, Tiantian; Fan, Yameng; Zhao, Lingfei; Cheng, Xiangxin; Tian, Yunan; Li, Lele; Li, Yan; Zhang, Wen; Yu, Peng; Guo, Pingmei; Yang, Zehui; Peng, Jian; Xue, Lixing; Wang, Jiazhao; Li, Zhaohuai; Xie, Ming; Liu, Huakun; Dou, Shixue.
Afiliación
  • Yao J; State Key Laboratory of Precision Blasting, Jianghan University, 430056, Wuhan, China.
  • Li Y; Hubei Provincial Engineering Research Center of Surface and Interface Regulation Technology and Equipment for Renewable Energy Materials, Jianghan University, 430056, Wuhan, China.
  • Xiong T; State Key Laboratory of Precision Blasting, Jianghan University, 430056, Wuhan, China.
  • Fan Y; Hubei Provincial Engineering Research Center of Surface and Interface Regulation Technology and Equipment for Renewable Energy Materials, Jianghan University, 430056, Wuhan, China.
  • Zhao L; Sustainable Energy Laboratory, Faculty of Materials Science and Chemistry, China University of Geosciences Wuhan, 430074, Wuhan, China.
  • Cheng X; Institute for Superconducting and Electronic Materials, Australian Institute for Innovative Materials, University of Wollongong, Squires Way, 2522, North Wollongong, NSW,, Australia.
  • Tian Y; Institute for Superconducting and Electronic Materials, Australian Institute for Innovative Materials, University of Wollongong, Squires Way, 2522, North Wollongong, NSW,, Australia.
  • Li L; State Key Laboratory of Precision Blasting, Jianghan University, 430056, Wuhan, China.
  • Li Y; Hubei Provincial Engineering Research Center of Surface and Interface Regulation Technology and Equipment for Renewable Energy Materials, Jianghan University, 430056, Wuhan, China.
  • Zhang W; State Key Laboratory of Precision Blasting, Jianghan University, 430056, Wuhan, China.
  • Yu P; Hubei Provincial Engineering Research Center of Surface and Interface Regulation Technology and Equipment for Renewable Energy Materials, Jianghan University, 430056, Wuhan, China.
  • Guo P; State Key Laboratory of Precision Blasting, Jianghan University, 430056, Wuhan, China.
  • Yang Z; Hubei Provincial Engineering Research Center of Surface and Interface Regulation Technology and Equipment for Renewable Energy Materials, Jianghan University, 430056, Wuhan, China.
  • Peng J; State Key Laboratory of Precision Blasting, Jianghan University, 430056, Wuhan, China.
  • Xue L; Hubei Provincial Engineering Research Center of Surface and Interface Regulation Technology and Equipment for Renewable Energy Materials, Jianghan University, 430056, Wuhan, China.
  • Wang J; State Key Laboratory of Material Processing and Die & Mold Technology, School of Materials Science and Engineering, Huazhong University of Science and Technology, 430074, Wuhan, China.
  • Li Z; State Key Laboratory of Material Processing and Die & Mold Technology, School of Materials Science and Engineering, Huazhong University of Science and Technology, 430074, Wuhan, China.
  • Xie M; State Key Laboratory of Precision Blasting, Jianghan University, 430056, Wuhan, China.
  • Liu H; Hubei Provincial Engineering Research Center of Surface and Interface Regulation Technology and Equipment for Renewable Energy Materials, Jianghan University, 430056, Wuhan, China.
  • Dou S; Sustainable Energy Laboratory, Faculty of Materials Science and Chemistry, China University of Geosciences Wuhan, 430074, Wuhan, China.
Angew Chem Int Ed Engl ; : e202407898, 2024 May 13.
Article en En | MEDLINE | ID: mdl-38739536
ABSTRACT
The quest for smart electronics with higher energy densities has intensified the development of high-voltage LiCoO2 (LCO). Despite their potential, LCO materials operating at 4.7 V faces critical challenges, including interface degradation and structural collapse. Herein, we propose a collective surface architecture through precise nanofilm coating and doping that combines an ultra-thin LiAlO2 coating layer and gradient doping of Al. This architecture not only mitigates side reactions, but also improves the Li+ migration kinetics on the LCO surface. Meanwhile, gradient doping of Al inhibited the severe lattice distortion caused by the irreversible phase transition of O3-H1-3-O1, thereby enhanced the electrochemical stability of LCO during 4.7 V cycling. DFT calculations further revealed that our approach significantly boosts the electronic conductivity. As a result, the modified LCO exhibited an outstanding reversible capacity of 230 mAh g-1 at 4.7 V, which is approximately 28 % higher than the conventional capacity at 4.5 V. To demonstrate their practical application, our cathode structure shows improved stability in full pouch cell configuration under high operating voltage. LCO exhibited an excellent cycling stability, retaining 82.33 % after 1000 cycles at 4.5 V. This multifunctional surface modification strategy offers a viable pathway for the practical application of LCO materials, setting a new standard for the development of high-energy-density and long-lasting electrode materials.
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Texto completo: 1 Banco de datos: MEDLINE Idioma: En Revista: Angew Chem Int Ed Engl Año: 2024 Tipo del documento: Article País de afiliación: China

Texto completo: 1 Banco de datos: MEDLINE Idioma: En Revista: Angew Chem Int Ed Engl Año: 2024 Tipo del documento: Article País de afiliación: China