高安全固态氧化石墨烯/硅脂复合电解质设计及性能研究

Design and performance study of high-safety solid-state graphene oxide/silicone grease composite electrolyte

  • 摘要: 锂离子电池广泛应用于动力电池及大规模储能等领域。针对传统固态聚合物电解质存在的室温离子电导率低、结晶度高及固-固界面阻抗大等问题,开发兼具高离子导电性、高安全性与界面稳定性的复合固态电解质成为关键挑战。本文设计并制备了一种氧化石墨烯/硅脂共价键合型复合固态聚合物电解质:首先通过端位乙烯基硅脂(MQ)、甲基丙烯酸甲酯、丙烯腈和乙酸乙烯酯共聚合成MQ-PMAV,随后将其与氧化石墨烯(graphene oxide, GO)及LiTFSI复合,采用溶液浇筑法制备成膜。结构表征表明,Si—O—Si硅脂单元成功接入聚合物骨架,GO的引入有效降低了结晶度,提升了成膜性与机械强度。电化学测试显示,该复合电解质的室温离子电导率达1.7×10−4 S·cm−1,电化学窗口宽至5.5 V。组装的LiFePO4|MQ-PMAV-GO|Li电池在50 ℃、0.1C倍率下循环50次后,放电容量达到LiFePO4理论值的95.8%,库伦效率接近100%;在0.2C倍率下循环500次,容量保持率为77.6%。本研究通过硅脂共聚与石墨烯协同改性,为高安全固态锂电池电解质的设计提供了新思路。

     

    Abstract: Lithium-ion batteries are widely used in electric vehicles and large-scale energy storage systems. To address the limitations of conventional solid polymer electrolytes, such as low room-temperature ionic conductivity, high crystallinity, and significant solid-solid interfacial resistance, developing composite solid-state electrolytes with high ionic conductivity, enhanced safety, and stable interfaces remains a critical challenge. In this study, a covalently bonded graphene oxide/silicone resin composite solid polymer electrolyte was designed and fabricated. Vinyl-terminated silicone resin (MQ) was copolymerized with methyl methacrylate, acrylonitrile, and vinyl acetate to form MQ-PMAV. This copolymer was then composited with GO and LiTFSI, and the mixture was solution-cast into membranes. Structural characterization indicated that incorporating Si-O-Si silicone units into the polymer backbone, along with GO, reduced crystallinity and improved film-forming ability and mechanical strength. Electrochemical tests showed that the composite electrolyte exhibited a room-temperature ionic conductivity of 1.7×10−4 S·cm−1 and an electrochemical stability window up to 5.5 V. LiFePO4|MQ-PMAV-GO|Li cells delivered 95.8% of the theoretical capacity at 0.1C and 50 ℃ after 50 cycles, with nearly 100% Coulombic efficiency. At 0.2C, the capacity retention was 77.6% after 500 cycles. This study offers a novel approach for designing safe, high-performance solid-state electrolytes through the synergistic modification of silicone resin copolymerization and graphene incorporation.

     

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