Multifunctionality of cerium decoration in enhancing the cycling stability and rate capability of a nickel-rich layered oxide cathode

材料科学 阴极 化学工程 尖晶石 电解质 电化学 涂层 氧化物 煅烧 氧化铈 表面改性 陶瓷 冶金 电极 复合材料 化学 催化作用 物理化学 工程类 生物化学
作者
Shuaipeng Hao,Dianwei Zhang,Yunjiao Li,Xiaoming Xi,Shan Wang,Xiaohui Li,Xinjie Shen,Shuaiwei Liu,Junchao Zheng
出处
期刊:Nanoscale [The Royal Society of Chemistry]
卷期号:13 (47): 20213-20224 被引量:19
标识
DOI:10.1039/d1nr05912b
摘要

The structural collapse and surface chemical degradation of nickel-rich layered oxide cathodes (NCM) of lithium-ion batteries during operation, which result in severe capacity attenuation, are the major challenges that hinder their commercial development. To improve the cycle and rate performances of LiNi0.8Co0.1Mn0.1O2 (NCM811), in this study, we have constructed a double-shell structure protective layer with a surface CeO2-x coating and interfacial spinel-like phase, which mitigate particle microcrack formation and isolate the NCM811 particles from electrolyte erosion. Additionally, during heat-treatment calcination, tetravalent cerium ions with strong oxidation ability can be partially doped into the material, which causes partial oxidation of Ni2+ to Ni3+, thereby reducing the Li+/Ni2+ mixing. The strong Ce-O bonds formed in the lattice help to improve the stability of the structure in the highly de-lithiated state. Thus, the synergy of multifunctional cerium modification effectively improves the structural stability and electrochemical kinetics of the material during cycling. Impressively, the obtained Ce-NCM811 exhibits capacity retention of 80.3% at a high discharge rate of 8 C after 500 cycles, which is much higher than that of the pristine cathode (only 44.3%). This work successfully designed a material with multi-functional Ce modification to provide a basis for Ni-rich cathode materials, which is crucial as it effectively improves the electrochemical performance.
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