电解质
材料科学
法拉第效率
离子电导率
电导率
离子键合
锂(药物)
离子
化学工程
快离子导体
相容性(地球化学)
相间
金属
复合数
导电体
纳米技术
金属锂
热传导
离子运输机
无机化学
电流密度
工作(物理)
电极
电化学
作者
Xiaoming Zhou,Renyu Cai,Q Chen,Qianyi Zhang,Ran Rena,Yeqing Shen,Yitong Liang,Junduo Chen,Hong Zhu,Huanan Duan
标识
DOI:10.1002/adma.202523369
摘要
ABSTRACT Composite solid electrolytes (CSEs) based on poly(vinylidene fluoride)‐co‐hexafluoropropylene (PVDF‐HFP) and Li 6.4 La 3 Zr 1.4 Ta 0.6 O 12 (LLZTO) are considered among the most promising SEs for achieving high‐energy‐density solid‐state batteries. However, low ionic conductivity and poor interfacial compatibility pose significant challenges for their practical applications. Herein, a strategy involving the construction of Li x TaO x F 5‐ x (LTOF) ion bridges with competitive coordination effects on the LLZTO surface is proposed. This approach alleviates restrictions on Li + transport and enhances Li + transport kinetics. The introduction of LTOF weakens Li + coordination strength, suppresses electron localization at the LLZTO/PVDF‐HFP interface, and simultaneously reduces PVDF‐HFP crystallinity. This creates multiple efficient Li + transport pathways and an interphase with excellent compatibility. Consequently, the prepared electrolyte exhibits a high ionic conductivity of 1.21 mS cm − 1 . Attributing to easier lithium salt dissociation, the solid electrolyte interface enriched with inorganic components, e.g. LiF/Li 3 N/Li 2 S, enables the Li|CSE‐9TF|Li cell to maintain stable plating/stripping for over 1100 h at a current density of 0.8 mA cm − 2 . The assembled LiFePO 4 ||Li cells deliver high capacity retention (93.4%) and approaching 100% coulombic efficiency after 1000 cycles at 1C. This work proposes a strategy for regulating the coordination environment and improving interfacial compatibility through surface oxyhalide layers, facilitating new progress in the practical application of CSEs.
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