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Polypropylene/polyethylene multilayer separators with enhanced thermal stability for lithium-ion battery via multilayer coextrusion

机译:聚丙烯/聚乙烯多层隔膜,具有通过多层共挤的锂离子电池的热稳定性增强的热稳定性

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A facile and continuous method to prepare porous polypropylene (PP)/polyethylene (PE) multilayer membranes as separators for lithium-ion batteries via multilayer coextrusion and CaCO3 template method is proposed. Scanning electron microscopy (SEM) images indicate that the membrane exhibits abundant and well-connected sub-micron porous structure. Besides, the physical and electrochemical properties of the membranes, such as thickness, porosity, electrolyte uptake, ionic conductivity, electrochemical stability, thermal stability, and battery performance, are characterized and compared with the commercial separators with trilayer construction of PP and PE (e.g., Celgard (R) 2325). The results indicate that the multilayer PP/PE separators exhibit higher porosity as well as higher electrolyte uptake and retention than Celgard (R) 2325, which will definitely increase the ionic conductivity, and consequently improve the battery performances. More importantly, the PP/PE multilayer separators not only show effective thermal shutdown function, but also shows significant advantages of high thermal stability up to 160 degrees C. The thermal shutdown function of PP/PE multilayer membranes can be adjusted widely in the temperature range from 127 degrees C to 165 degrees C, which is wider than that of the commercial separators. The above results combined with the convenient and cost-effective preparation process makes porous PP/PE multilayer membranes a promising alternative to the commercialized trilayer lithium-ion battery separators. (C) 2018 Elsevier Ltd. All rights reserved.
机译:提出了一种制备多孔聚丙烯(PP)/聚乙烯(PE)多层膜作为通过多层共挤出和CACO3模板方法作为锂离子电池的分离器的络合聚丙烯(PP)/聚乙烯(PE)多层膜的方法。扫描电子显微镜(SEM)图像表明膜表现出丰富且连接良好的亚微米多孔结构。此外,诸如厚度,孔隙率,电解质吸收,离子电导率,电化学稳定性,热稳定性和电池性能的物理和电化学特性,并与具有PP和PE的三层构造的商业分离器进行了比较,并将电化学稳定性,热稳定性和电池性能相比(例如,Celgard(R)2325)。结果表明,多层PP / PE分离器表现出更高的孔隙率以及比Celgard(R)2325的更高的电解质吸收和保持率,这绝对会增加离子电导率,并因此提高电池性能。更重要的是,PP / PE多层分离器不仅显示出有效的热关断功能,而且还显示出高达160℃的高热稳定性的显着优点。PP / PE多层膜的热关断功能可以在温度范围内广泛调节从127摄氏度到165摄氏度,这比商业分离器的12。上述结果与方便且经济有效的制备过程相结合,使多孔PP / PE多层膜成为商业化三层锂离子电池分离器的有希望的替代方案。 (c)2018年elestvier有限公司保留所有权利。

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