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Addressing Manufacturability and Processability in Polymer Gel Electrolytes for Li/Na Batteries

机译:解决Li / Na电池聚合物凝胶电解质中的可制造性和加工性

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摘要

Gel electrolytes are prepared with Ultra High Molecular Weight (UHMW) polyethylene oxide (PEO) in a concentration ranging from 5 to 30 wt.% and Li- and Na-doped 1-butyl-1-methylpyrrolidinium bis(trifluoromethylsulfonyl)imide (PYR14-TFSI) by a simple procedure consisting of dissolving PEO by melting it directly in the liquid electrolyte while stirring the blend. This procedure is fast, reproducible and needs no auxiliary solvents, which makes it sustainable and potentially easy to scale up for mass production. The viability of the up-scaling by extrusion has been studied. Extrusion has been chosen because it is a processing method commonly employed in the plastics industry. The structure and morphology of the gel electrolytes prepared by both methods have been studied by DSC and FTIR, showing small differences among the two methods. Composite gels incorporation high concentrations of surface modified sepiolite fibers have been successfully prepared by extrusion. The rheological behavior and ionic conductivity of the gels have been characterized, and very similar performance of the extruded and manually mixed gels is detected. Ionic conductivity of all the gels, including the composites, are at or over 0.4 mS cm−1 at 25 °C, being at the same time thermoreversible and self-healing gels, tough, sticky, transparent and stretchable. This combination of properties, together with the viability of their industrial up-scaling, makes these gel electrolyte families very attractive for their application in energy storage devices.
机译:用超高分子量(UHMW)聚环氧乙烷(PEO)制备凝胶电解质,其浓度范围为5-30重量%。%和Li-和Na-掺杂的1-丁基-1-甲基吡咯烷鎓双(三氟甲基磺酰基)酰亚胺(Pyr14- TFSI)通过将PEO直接熔化在液体电解质中,同时搅拌混合物来组成的简单方法。该程序快速,可再现,不需要辅助溶剂,这使得可持续和易于扩大批量生产。研究了通过挤出的上缩塑的可行性。选择了挤出,因为它是塑料行业通常采用的加工方法。通过DSC和FTIR研究了两种方法制备的凝胶电解质的结构和形态,显示了两种方法的少差异。复合凝胶掺入高浓度的表面改性的海泡石纤维通过挤出成功制备。已经表征了凝胶的流变行为和离子电导率,并且检测挤出和手动凝胶的非常相似的性能。所有凝胶的离子电导率包括复合材料,在25℃下或超过0.4ms cm -1,同时具有热可逆和自愈的凝胶,坚韧,粘性,透明和可伸展。这种性质的组合以及其工业上缩放的可行性,使得这些凝胶电解质家庭对其在能量存储装置中的应用非常具有吸引力。

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