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首页> 外文期刊>Journal of power sources >Evaporation-induced self-assembled silica colloidal particle-assisted nanoporous structural evolution of poly(ethylene terephthalate) nonwoven composite separators for high-safety/high-rate lithium-ion batteries
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Evaporation-induced self-assembled silica colloidal particle-assisted nanoporous structural evolution of poly(ethylene terephthalate) nonwoven composite separators for high-safety/high-rate lithium-ion batteries

机译:蒸发诱导的自组装二氧化硅胶体粒子辅助纳米多孔结构演化的高安全/高速率锂离子电池用聚对苯二甲酸乙二酯非织造复合隔板

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摘要

A facile approach to the fabrication of nanoporous structure-tuned nonwoven composite separators is demonstrated for application in high-safety/high-rate lithium-ion batteries. This strategy is based on the construction of silica (SiO_2) colloidal particle-assisted nanoporous structure in a poly(ethylene terephthalate) (PET) nonwoven substrate. The nanoparticle arrangement arising from evaporation-induced self-assembly of SiO_2 colloidal particles allows the evolution of the unusual nanoporous structure, i.e. well-connected interstitial voids formed between close-packed SiO_2 particles adhered by styrene-butadiene rubber (SBR) binders. Meanwhile, the PET nonwoven serves as a mechanical support that contributes to suppressing thermal shrinkage of the nonwoven composite separator. The aforementioned structural novelty of the nonwoven composite separator plays a key role in providing the separator with advantageous characteristics (specifically, good electrolyte wettability, high ionic conductivity, and benign compatibility with electrodes), which leads to the better cell performance than a commercialized polyethylene (PE) separator.
机译:展示了一种用于制备纳米多孔结构调整的非织造复合材料隔膜的简便方法,可用于高安全性/高倍率的锂离子电池。该策略基于在聚对苯二甲酸乙二酯(PET)非织造基材中构造二氧化硅(SiO_2)胶体粒子辅助的纳米多孔结构。由蒸发诱导的SiO_2胶体颗粒自组装产生的纳米颗粒排列允许不寻常的纳米孔结构的演变,即,在通过苯乙烯-丁二烯橡胶(SBR)粘合剂粘附的紧密堆积的SiO_2颗粒之间形成了良好连接的间隙。同时,PET非织造材料用作有助于抑制非织造复合材料隔板的热收缩的机械支撑体。非织造复合隔板的上述结构新颖性在为隔板提供有利的特性(特别是良好的电解质润湿性,高离子电导率和与电极的良性相容性)方面起着关键作用,与商业化的聚乙烯相比,可带来更好的电池性能( PE)分隔符。

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