Fan Zhaoze, Xiang Jiayuan, Yu Qiong, Wu Xianzhang, Li Min, Wang Xiuli, Xia Xinhui, Tu Jiangping
State Key Laboratory of Silicon Materials, Key Laboratory of Advanced Materials and Applications for Batteries of Zhejiang Province, and School of Materials Science and Engineering, Zhejiang University, Hangzhou 310027, China.
Narada Power Source Co., Ltd., Hangzhou 311305, China.
ACS Appl Mater Interfaces. 2022 Jan 12;14(1):726-735. doi: 10.1021/acsami.1c18264. Epub 2021 Dec 21.
Sulfide-based all-solid-state lithium batteries (ASSLBs) assembled with Ni-rich layered cathodes are currently promising candidates for achieving high-energy-density and high-safety energy storage systems. However, the interfacial challenges between sulfide electrolyte and Ni-rich layered cathode, such as space charge layer, side reaction, and poor physical contact, greatly limit the practicality of all-solid-state batteries. In this work, an optimal crystalline LiLaTiO (LLTO) surface coating with a thickness of roughly 6 nm and a high Li ion conductivity of 0.3 mS cm was adopted to enhance the structural stability of the single-crystal LiNiCoMnO (S-NCM622) cathode in ASSLBs. Furthermore, due to the high ionic conductivity and chemical stability of the LLTO coating layer, the interfacial problems, involving interfacial reaction and a space charge layer, in sulfide-based all-solid-state batteries have been effectively solved. As a result, the assembled ASSLBs with the S-NCM622@LLTO cathode exhibit high initial capacity (179.7 mAh g) at 0.05 C and excellent cycling performance with 84.5% capacity retention after 100 cycles at 0.1 C at room temperature. This work proposes an effective strategy to enhance the performance of Ni-rich layered cathodes for next-generation high-energy-density sulfide-based lithium batteries.
采用富镍层状阴极组装的硫化物基全固态锂电池(ASSLB)是目前实现高能量密度和高安全性储能系统的有潜力的候选者。然而,硫化物电解质与富镍层状阴极之间的界面挑战,如空间电荷层、副反应和物理接触不良,极大地限制了全固态电池的实用性。在这项工作中,采用了一种最佳的结晶LiLaTiO(LLTO)表面涂层,其厚度约为6 nm,锂离子电导率高达0.3 mS cm,以增强全固态锂电池中单晶LiNiCoMnO(S-NCM622)阴极的结构稳定性。此外,由于LLTO涂层具有高离子电导率和化学稳定性,硫化物基全固态电池中涉及界面反应和空间电荷层的界面问题得到了有效解决。结果,采用S-NCM622@LLTO阴极组装的全固态锂电池在0.05 C下表现出高初始容量(179.7 mAh g),在室温下0.1 C下循环100次后容量保持率为84.5%,具有优异的循环性能。这项工作提出了一种有效的策略来提高下一代高能量密度硫化物基锂电池富镍层状阴极的性能。