阻燃安全型PES@SiO2锂离子电池隔膜的制备及其性能

Preparation and performance of flame-retardant safety PES@SiO2 lithium-ion battery separator

  • 摘要: 锂离子电池具有高比能量密度、良好的循环性能及环境友好等特性,使其在电动汽车、电子产品、储能等领域广泛应用。但近年来锂离子电池在使用过程中频繁发生安全事故,使得人们对这种清洁能源的安全性提出了质疑。聚醚砜(PES)隔膜具有优异的耐高温尺寸稳定性,同时在阻燃性能方面表现也很突出,本文通过静电纺丝技术,使得制备的PES电池隔膜具有良好的孔隙率,对电解液有更好的浸润性。利用原位生长技术在PES纳米纤维的表面包覆一层SiO2,使隔膜在力学性能以及耐热稳定上得以提高,同时无机粒子SiO2在高温灼烧下缩聚交联成Si—O—Si网状结构层阻断燃烧的特性又赋予隔膜阻燃的性能,通过扫描电子显微镜(SEM)对复合隔膜的微观形貌进行表征,以及傅里叶红外光谱(FTIR)对复合隔膜的微观结构进行表征等,通过对纤维隔膜进行点火器灼烧,表征了复合隔膜的阻燃特性,其中PES/SiO2-1.5隔膜的阻燃性最好,同时在电化学性能方面表现也十分优异。

     

    Abstract: Lithium-ion batteries, renowned for their high energy density, robust cycle life, and environmentally friendly profile, have found extensive applications in sectors such as electric vehicles, consumer electronics, and energy storage systems. Despite their widespread adoption, the increasing frequency of safety incidents during lithium-ion battery usage in recent years has cast doubt on the safety and reliability of this clean energy technology. Polyethersulfone (PES) membranes demonstrate superior dimensional stability at elevated temperatures, along with exceptional flame-retardant properties. In this work, PES-based separators were fabricated via electrospinning, yielding membranes with optimized porosity and enhanced electrolyte wettability. Through the application of in-situ growth techniques, a SiO2 layer was uniformly coated onto the PES nanofibers, enhancing both the mechanical properties and thermal stability of the separators. The inorganic SiO2 nanoparticles undergo polycondensation and cross-linking under high temperatures, forming a Si—O—Si network that effectively inhibits combustion, thus imparting flame-retardant capabilities to the membranes. The microstructure of the composite membranes was systematically characterized using scanning electron microscopy (SEM) and Fourier transform infrared spectroscopy (FTIR).Flame retardancy was assessed via ignition testing, revealing that the PES/SiO2-1.5 membrane demonstrated superior flame resistance, along with remarkable electrochemical performance.

     

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