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Chemically Bonded Biphase Coating of Ni-Rich Layered Oxides with Enhanced High-Voltage Tolerance and Long-Cycle Stability.

作者信息

Yang Mohan, Li Danhua, Wang Jing, Li Hanlou, Wang Ran, Liu Qi, Wang Meng, Wu Feng, Wang Fang, Tan Guoqiang

机构信息

School of Materials Science & Engineering, Beijing Institute of Technology, Beijing 100081, People's Republic of China.

Chongqing Innovation Center, Beijing Institute of Technology, Chongqing 401120, People's Republic of China.

出版信息

ACS Appl Mater Interfaces. 2024 Aug 28;16(34):45030-45037. doi: 10.1021/acsami.4c11143. Epub 2024 Aug 19.

DOI:10.1021/acsami.4c11143
PMID:39158412
Abstract

Stabilizing the crystalline structure and surface chemistry of Ni-rich layered oxides is critical for enhancing their capacity output and cycle life at a high cutoff voltage. Herein, we adopted a simple one-step solid-state method by directly sintering the NiCo(OH) precursor with LiOH and TaO, to simultaneously achieve the bulk material synthesis of LiNiCoO and construction of a rock-salt Ta-doped interphase and an amorphous LiTaO outer layer, forming a chemically bonded surface biphase coating on LiNiCoO. Such a cathode architectural design has been demonstrated with superior advantages: (1) eliminating surface residual alkali, (2) strengthening the layered oxygen lattice, (3) suppressing bulk-phase transformation, and (4) facilitating Li-ion transport. The obtained cathode exhibits excellent electrochemical performance, including a high initial reversible capacity of 180.3 mAh g at 1.0 C with 85.5% retention after 300 cycles (2.8-4.35 V) and a high initial reversible capacity of 182.5 mAh g at 0.2 C with 87.6% retention after 100 cycles (2.8-4.5 V). Notably, this facile and scalable electrode engineering makes Ni-rich layered oxides promising for practical applications.

摘要

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