电解质
材料科学
离子电导率
锂(药物)
电化学
化学工程
离子液体
聚合物
电化学窗口
氧化物
双功能
快离子导体
聚合物电解质
储能
电导率
易燃液体
金属
可燃性
聚乙烯
无机化学
纳米技术
氢
电化学电位
涂层
氢气储存
自愈水凝胶
离子键合
作者
Qi Chen,Wei Tang,Tengteng Gu,De‐Yi Wang
标识
DOI:10.1002/adfm.202526101
摘要
Abstract The growing demand for sustainable and fire‐safe energy storage underscores the limitations of conventional lithium‐ion batteries, which rely on flammable liquid electrolytes and fossil‐derived polymers. Biomass‐derived solid polymer electrolytes offer a promising alternative by combining renewability, environmental compatibility, and functional versatility. Here, a biobased all‐solid‐state polymer electrolyte (ASPE) comprising polyrotaxane (PLR, polyethylene oxide threaded with biobased α‐cyclodextrin) and lithium phenylphosphonate (PPALi) is presented. The PLR framework suppresses PEO recrystallization, enhances ionic conductivity and mechanical robustness, while PPALi simultaneously stabilizes the electrode–electrolyte interface and imparts intrinsic flame retardancy. Li|LiFePO 4 cells with this ASPE exhibit a threefold longer cycle life than PLR‐based controls, and symmetric Li|Li cells operate stably for 2000 h without short‐circuiting. Its fire safety is markedly improved, with immediate self‐extinguishing behavior in horizontal burning, a 63.8% reduction in peak heat release, and over 30% lower total heat release in cone calorimetry than the reference. XPS, TOF‐SIMS, and Pyrolysis‐GC‐MS confirm the function of PPALi in electrochemical stability and flame retardancy. The electrolyte is also recyclable owing to the reversible interlocking structure and hydrogen bonding within PLR, without impacts on electrochemical performance. This work establishes a sustainable, recyclable, and flame‐retardant biobased electrolyte enabling safe, high‐performance lithium metal batteries.
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