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Facile control of nanoporosity in Cellulose Acetate using Nickel(II) nitrate additive and water pressure treatment for highly efficient battery gel separators

机译:使用硝酸镍(II)添加剂和水压处理可轻松控制醋酸纤维素中的纳米孔隙从而形成高效的电池凝胶隔膜

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摘要

We succeed in fabricating nearly straight nanopores in cellulose acetate (CA) polymers for use as battery gel separators by utilizing an inorganic hexahydrate (Ni(NO3)2·6H2O) complex and isostatic water pressure treatment. The continuous nanopores are generated when the polymer film is exposed to isostatic water pressure after complexing the nickel(II) nitrate hexahydrate (Ni(NO3)2·6H2O) with the CA. These results can be attributed to the manner in which the polymer chains are weakened because of the plasticization effect of the Ni(NO3)2·6H2O that is incorporated into the CA. Furthermore, we performed extensive molecular dynamics simulation for confirming the interaction between electrolyte and CA separator. The well controlled CA membrane after water pressure treatment enables fabrication of highly reliable cell by utilizing 2032-type coin cell structure. The resulting cell performance exhibits not only the effect of the physical morphology of CA separator, but also the chemical interaction of electrolyte with CA polymer which facilitates the Li-ion in the cell.
机译:我们通过利用无机六水合物(Ni(NO3)2·6H2O)络合物和恒压水压处理成功地在醋酸纤维素(CA)聚合物中制备了几乎笔直的纳米孔,用作电池凝胶隔膜。在将硝酸镍(II)六水合物(Ni(NO3)2·6H2O)与CA络合后,将聚合物膜暴露于等静水压下时,会生成连续的纳米孔。这些结果可以归因于由于掺入CA中的Ni(NO3)2·6H2O的增塑作用而使聚合物链变弱的方式。此外,我们进行了广泛的分子动力学模拟,以确认电解质和CA隔板之间的相互作用。经过水压处理后,良好控制的CA膜可以利用2032型纽扣电池结构制造高度可靠的电池。所得的电池性能不仅表现出CA隔板的物理形态的影响,而且表现出电解质与CA聚合物的化学相互作用,从而促进了电池中的锂离子的产生。

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