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Preparation of novel carbon microfiber/carbon nanofiber-dispersed polyvinyl alcohol-based nanocomposite material for lithium-ion electrolyte battery separator

机译:锂离子电解质电池隔膜用新型碳微纤维/碳纳米纤维分散的聚乙烯醇基纳米复合材料的制备

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摘要

A novel nanocomposite polyvinyl alcohol precursor-based material dispersed with the web of carbon microfibers and carbon nanofibers is developed as lithium (Li)-ion electrolyte battery separator. The primary synthesis steps of the separator material consist of esterification of polyvinyl acetate to produce polyvinyl alcohol gel, ball-milling of the surfactant dispersed carbon micro-nanofibers, mixing of the milled micron size (~500 nm) fibers to the reactant mixture at the incipience of the polyvinyl alcohol gel formation, and the mixing of hydro-phobic reagents along with polyethylene glycol as a plasticizer, to produce a thin film of~25 μm. The produced film, uniformly dispersed with carbon micro-nanofibers. has dramatically improved performance as a battery separator, with the ion conductivity of the electrolytes (UPF_6) saturated film measured as 0.119 S-cm~(-1), approximately two orders of magnitude higher than that of polyvinyl alcohol. The other primary characteristics of the produced film, such as tensile strength, contact angle, and thermal stability, are also found to be superior to the materials made of other precursors, including polypropylene and polyethylene, discussed in the literature. The method of producing the films in this study is novel, simple, environmentally benign, and economically viable.
机译:开发了一种新型的纳米复合聚乙烯醇前体基材料,该材料分散在碳微纤维和碳纳米纤维的纤维网中,作为锂离子电池隔膜。分离器材料的主要合成步骤包括:聚乙酸乙烯酯的酯化反应以生产聚乙烯醇凝胶;球磨表面活性剂分散的碳微纳米纤维;将研磨后的微米级(〜500 nm)纤维与反应混合物混合。聚乙烯醇凝胶形成的初期形成,以及疏水试剂与聚乙二醇作为增塑剂的混合,产生了约25μm的薄膜。制成的薄膜均匀分散有碳微纳米纤维。具有显着改善的电池隔膜性能,电解质(UPF_6)饱和膜的离子电导率为0.119 S-cm〜(-1),比聚乙烯醇高约两个数量级。还发现制得的膜的其他主要特性,例如拉伸强度,接触角和热稳定性,优于文献中讨论的由其他前体制成的材料,包括聚丙烯和聚乙烯。在这项研究中生产薄膜的方法新颖,简单,对环境无害且在经济上可行。

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