原子层沉积
图层(电子)
材料科学
阴极
自行车
沉积(地质)
锂(药物)
涂层
逐层
化学工程
氧化物
阴极电弧沉积
纳米技术
化学
冶金
电化学
阴极保护
电极
物理化学
考古
古生物学
内分泌学
工程类
历史
生物
医学
沉积物
作者
Chong Xu,Jingyan Huang,Yuling Xia,Zengjie Fan,Tingwei Gou,Shengliang Zhang,Hui Dou,Xiangjun Lu,Bing Ding,Xiaogang Zhang
标识
DOI:10.1002/ente.202500760
摘要
The potential of high‐nickel‐layered LiNi 1– x – y Co y Mn z O 2 (with 1– x – y > 0.6, NCM) cathode as frontrunners for the high energy‐density lithium‐ion batteries (LIBs) lies in their high theoretical specific capacity and working potential. However, an inherent challenge arises from the formation of residual lithium compounds, leading to issues such as capacity deterioration, and suboptimal to deposition rage characteristics. Herein, this study leverages the prowess of plasma‐enhanced atomic layer deposition (ALD) technology to effectively coat LiNi 0.8 Co 0.1 Mn 0.1 O 2 (NCM811) particles with a lithium reactive Co 3 O 4 layer. Consequently, these interventions yield tangible enhancements in the cycling performance and thermal stability of NCM811 materials. At a current density of 1 C, the initial specific capacity witnesses a noteworthy ascent from 152.9 mAh g −1 for the uncoated electrode to 169.1 mAh g −1 for the NCM811 cathode with Co 3 O 4 coating. After cycling for 200 cycles, the capacity retention rates register at 55.79% and 80.84%, respectively, for the uncoated and coated electrodes. Notably, the impact of Co 3 O 4 extends to bolstering the thermal stability of NCM811. In essence, this study harnesses ALD technology to cultivate a Co 3 O 4 ‐coated environment for NCM811, elevating cycling performance and enhancing thermal stability. These advancements hold profound implications for the evolution of LIB technology.
科研通智能强力驱动
Strongly Powered by AbleSci AI