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Effects of Coated Separator Surface Morphology on Electrolyte Interfacial Wettability and Corresponding Li–Ion Battery Performance

机译:隔离膜表面形态对电解质界面润湿性和相应的锂离子电池性能的影响

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摘要

In order to study the effect of interfacial wettability of separator on electrochemical properties for lithium–ion batteries, two different kinds of polyvinylidene fluoride-hexafluoropropylene (PVDF–HFP) solution are prepared and used to coat onto a polypropylene (PP) microporous membrane. It is found that the cell performance of a coated separator using aqueous slurry (WPS) is better than that of the coated separator using acetone (APS) as the solvent. The separator with flat and pyknotic surface (PP and APS) has a strong polar action with the electrolyte, where the polar part is more than 80%. To the contrary, the WPS has a roughness surface and when the PVDF–HFP particles accumulate loose, it makes the apolar part plays a dominate role in surface free energy; the dispersive energy reaches to 40.17 mJ m . The WPS has the lowest immersion free energy, 31.9 mJ m with the electrolyte, and this will accelerate electrolyte infiltration to the separator. The loose particle accumulation also increases the electrolyte weight uptake and interfacial wettability velocity, which plays a crucial role in improving the cell performance such as the ionic conductivity, discharge capacity and the C-rate capability.
机译:为了研究隔膜的界面润湿性对锂离子电池电化学性能的影响,制备了两种不同种类的聚偏二氟乙烯-六氟丙烯(PVDF-HFP)溶液,并用于涂覆在聚丙烯(PP)微孔膜上。发现使用水性浆料(WPS)的涂覆隔膜的电池性能优于使用丙酮(APS)作为溶剂的涂覆隔膜的电池性能。具有平坦和多解的表面(PP和APS)的隔膜与电解质具有很强的极性作用,其中极性部分超过80%。相反,WPS具有粗糙的表面,并且当PVDF-HFP颗粒堆积时,它使非极性部分在表面自由能中起主要作用。色散能达到40.17 mJ m。 WPS具有最低的浸入自由能,与电解质的浸入自由能最低,为31.9 mJ m,这将加速电解质渗透到隔膜中。疏松的颗粒积累还增加了电解质的重量吸收和界面润湿性速度,这在改善电池性能(如离子电导率,放电容量和C速率容量)中起着至关重要的作用。

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