材料科学
电解质
抗弯强度
邻苯二甲腈
复合材料
热稳定性
离子电导率
电池(电)
相(物质)
化学工程
纳米技术
电极
化学
功率(物理)
物理
物理化学
量子力学
有机化学
酞菁
工程类
作者
Li-jiao Xun,Chen Li,Qinghai Meng,Zilong Wang,Ying Guo,Kun Zheng,Heng Zhou,Tong Zhao
标识
DOI:10.1002/advs.202407156
摘要
Abstract Structural battery integrated composites (SBICs) combining outstanding strength and heat resistance are highly desirable candidates for next generation high speed aircraft. Here, a novel high‐temperature‐resistant bi‐continuous electrolyte based on phthalonitrile resin is presented, allowing the construction of SBICs capable of stable operation across a wide temperature range. Excellent mechanical strength and high ionic conductivity can coexist in a bi‐continuous structure electrolyte (PL 50 ) where the phthalonitrile resin serves as the matrix phase and the ionic liquid electrolyte serves as the conductive phase. Benefiting from the thermal stability of the phthalonitrile resin, SBICs assembled with a PL 50 bi‐continuous electrolyte deliver excellent mechanical performance even at temperatures exceeding 200 °C, with a flexural strength of 299 MPa and a flexural modulus of 31.8 GPa. Additionally, with an increase in operating temperature, PL 50 @SBICs demonstrated enhanced rate performance while maintaining good cycling stability. The demonstration of resisting mechanical abuse at high temperatures and flame retardance further suggests the promise of SBICs with PL 50 bi‐continuous electrolytes operating under extreme conditions.
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