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Preparation of solid-state composite electrolytes based on organic/inorganic hybrid star-shaped polymer and PEG-functionalized POSS for all-solid-state lithium battery applications

机译:基于有机/无机杂化星形聚合物和PEG官能化POSS的全固态锂电池固态复合电解质的制备

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A series of composite electrolytes (CEs) consisting of organic/inorganic hybrid star-shaped polymer (SPP13), plasticizer (PEG-functionalized POSS derivatives), and lithium bis(trifluoromethanesulfonyl)imide (LiTFSI) were prepared to investigate the effects of the composite compositions and PEG chain length of PEs on the properties of CEs. SPP13 was prepared via ATRP from poly(ethylene glycol) methyl ether methacrylate (PEGMA) and methacryl- cyclohexyl-POSS (MA-POSS) using an octafunctional initiator, and the PEG-functionalized POSS derivatives were synthesized by the hydrosilylation reaction of octakis(dimethylsilyloxy)silsesquioxane (OHPS) and allyl-PEG. The CEs were found to be dimensionally-stable enough to separate the electrodes in batteries, but they still possessed high mobility of ion-conducting P(PEGMA) segments, as estimated by the low glass transition temperatures (T_g). The CEs having solid-state show quite high ionic conductivity (4.5 × 10~(-5) S cm~(-1) at 30 C) which is about three times of magnitude larger than that of the matrix polymer (SPP13) electrolyte (1.5 × 10~(-5) S cm~(-1) at 30 C). The CEs were electrochemically stable up to +4.2 V without the decomposition of electrolytes. An all-solid-state lithium battery prepared from the CEs exhibited larger discharge capacity than that prepared from the SPP13 electrolyte at 60 C.
机译:制备了一系列由有机/无机杂化星形聚合物(SPP13),增塑剂(PEG官能化的POSS衍生物)和双(三氟甲磺酰基)酰亚胺锂(LiTFSI)组成的复合电解质(CE),以研究复合物的作用PE的组成和PEG链长对CE性能的影响。使用八官能引发剂通过ATRP由聚(乙二醇)甲基醚甲基丙烯酸甲酯(PEGMA)和甲基丙烯酸-环己基-POSS(MA-POSS)制备SPP13,并通过八(二甲基甲硅烷氧基)的硅烷化反应合成PEG-官能化的POSS衍生物。倍半硅氧烷(OHPS)和烯丙基PEG。发现CE具有足够的尺寸稳定性,足以分隔电池中的电极,但通过低玻璃化转变温度(T_g)估算,它们仍然具有高离子迁移率的P(PEGMA)片段迁移率。具有固态的CE表现出相当高的离子电导率(在30 C下为4.5×10〜(-5)S cm〜(-1)),约为基质聚合物(SPP13)电解质的电导率的三倍(在30 C时为1.5×10〜(-5)S cm〜(-1)。 CE在高达+4.2 V的电压下具有电化学稳定性,且不会分解电解质。由CE制备的全固态锂电池在60℃时的放电容量要比由SPP13电解质制备的大。

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