电解质
离子电导率
氟
电化学
锂(药物)
化学
快离子导体
电化学窗口
离子键合
无机化学
氟化锂
电导率
氟化物
化学工程
储能
电化学电池
兴奋剂
化学稳定性
锂电池
金属
离子
金属锂
导电体
工作(物理)
纳米技术
作者
Saida Moumen,Kevin Lemoine,Enora Lavanant,Marc Dubois,Laurent Jouffret,Saida Moumen,Kevin Lemoine,Enora Lavanant,Marc Dubois,Laurent Jouffret
标识
DOI:10.1002/ejic.202500398
摘要
All solid‐state batteries are becoming increasingly prevalent in recent energy storage research due to their enhanced safety, higher energy density, wider operating temperature ranges, in addition to a longer cycle life compared to standard Li‐ion batteries. Nevertheless, numerous properties require enhancement for this novel technology to reach its full potential, especially the solid electrolyte (SE) field. For example, further research is required in the following areas: ionic conductivity, mechanical properties, and interface stability with the electrolyte and the lithium metal (Li) anode. One proposed approach to enhancing SE properties is fluorination. The incorporation of fluorine can result in enhanced electrochemical stability, attributed to the formation of a lithium fluoride (LiF) interface between the electrolyte and the Li anode. Additionally, fluorine doping can increase ionic conductivity due to its high electronegativity, facilitating the mobility of lithium ions. This review examines the impact of fluorine incorporation on SE properties, focusing on ionic conductivity and electrochemical stability. Furthermore, the limitations of fluorination in electrolytes, particularly with the LiF formation, will be discussed.
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