电解质
石墨
阳极
阻燃剂
化学工程
材料科学
离子
化学
电极
有机化学
复合材料
工程类
物理化学
作者
Haojie Liang,Zhen‐Yi Gu,Xinxin Zhao,Jin‐Zhi Guo,Jialin Yang,Wenhao Li,Bao Li,Zhiming Liu,Zhonghui Sun,Jingping Zhang,Xing‐Long Wu
标识
DOI:10.1016/j.scib.2022.07.002
摘要
Although graphite anodes operated with representative de/intercalation patterns at low potentials are considered highly desirable for K-ion batteries, the severe capacity fading caused by consecutive reduction reactions on the aggressively reactive surface is inevitable given the scarcity of effective protecting layers. Herein, by introducing a flame-retardant localized high-concentration electrolyte with retentive solvation configuration and relatively weakened anion-coordination and non-solvating fluorinated ether, the rational solid electrolyte interphase characterized by well-balanced inorganic/organic components is tailored in situ. This effectively prevented solvents from excessively decomposing and simultaneously improved the resistance against K-ion transport. Consequently, the graphite anode retained a prolonged cycling capability of up to 1400 cycles (245 mA h g−1, remaining above 12 mon) with an excellent capacity retention of as high as 92.4%. This is superior to those of conventional and high-concentration electrolytes. Thus, the optimized electrolyte with moderate salt concentration is perfectly compatible with graphite, providing a potential application prospect for K-storage evolution.
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