材料科学
阳极
相间
阴极
锂(药物)
能量密度
离子
电解质
光电子学
纳米技术
化学工程
电极
小袋
工程物理
有机化学
物理化学
遗传学
化学
解剖
内分泌学
医学
工程类
生物
作者
Xufeng Zang,Zhendong Li,Yishan Fang,Yanping Hong,Shengchen Yang,Zhe Peng,Shanshan Sun
标识
DOI:10.1021/acsami.0c12829
摘要
Prior to the maturation of next-generation energy storage devices, the actual lithium-ion batteries for commercial purposes are still expected to fulfill some critical requirements, among which the high energy density, wide operating temperature range, and related long-term cycling stability are the most challenging issues. Herein a multiple additives strategy is employed to simultaneously optimize the solid electrolyte interphase on the large-area anode and cathode in a 2 Ah artificial graphite (AGr)/LiNi0.5Co0.2Mn0.3O2 (NCM523) pouch cell with high gravimetric (>260 Wh kg–1) and volumetric (>630 Wh L–1) energy density. By introducing a rational mixture of electrolyte additives, a highly sulfurized surface layer and a uniform and thin passivation layer are separately formed on the anode and cathode of the AGr/NCM523 pouch cell, exhibiting high storage stability at 60 °C, much improved discharge capacity at −10 and −20 °C, high anodic stability at high voltage of 4.4 V, and stable cyclic performance with a capacity retention of 85.5% after 500 cycles, significantly outperforming the value of 75.7% after only 200 cycles of the cell without additional additives. These results demonstrate the critical effect of simultaneous optimizations of anode and cathode interphase layers to construct stable high-energy-density lithium-ion pouch cells.
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