电解质
锂(药物)
自行车
材料科学
金属锂
复合数
固态
金属
高压
电压
化学工程
快离子导体
复合材料
电极
冶金
化学
电气工程
医学
历史
工程类
内分泌学
物理化学
考古
作者
Xinhao Li,Chen Wang,Wenzheng Nan,Sikan Peng,Jin Liu,Shaojiu Yan
标识
DOI:10.1016/j.mtchem.2024.102219
摘要
Polyether electrolytes, which possess benefits in terms of lithium salt solubility, compatibility with lithium metal, and material availability, are promising candidate materials for solid-state lithium metal batteries with high safety and specific energy. However, achieving stable cycling at high rates under room temperature conditions for high-voltage lithium metal solid-state batteries is a significant challenge. In this study, a polyether-based composite solid-state electrolyte was fabricated via in situ polymerization, and a novel polyether matrix (PDSi) was synthesized by copolymerization of 1,3-dioxolane (DOL) and 3-(glycidoxypropyl)triethoxysilane (GPTES). The triethoxysilicon groups of PDSi improve the antioxidant capacity of polyether and interact with anionic groups , thereby enabling a wide electrochemical window of 5.5 V and a high lithium-ion transference number t Li+ of 0.56 at room temperature. In addition, a prepared PDSi@LLZTO electrolyte with an asymmetric structure mitigated the side reaction between the LLZTO ceramic filler and lithium. Here, PDSi@LLZTO exhibited a lithium-ion transference number of 0.67 and ionic conductivity of 1.28 × 10 −4 S cm −1 at 20 °C. More importantly, the Li|PDSi@LLZTO|NCM523 cell demonstrated excellent capacity retention of 83.9 % after 200 cycles at a high-rate discharge of 3C. The proposed material and structure design provide a unique perspective for the development of an effective polymer-based electrolyte for high-voltage lithium metal batteries . A novel asymmetric electrolyte based on polyether-based modified with triethoxysilicon, enabling stable high-rate discharge of lithium metal solid-state batteries. • A new asymmetric solid-state electrolyte was successfully prepared by in-situ polymerization • The electrolyte exhibits high ionic conductivity and a wide electrochemical stability window. • NCM523|Li cell exhibits excellent cycling stability at 3C.
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