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首页> 外文期刊>Polymer: The International Journal for the Science and Technology of Polymers >Polymerized ionic liquid diblock copolymer as solid-state electrolyte and separator in lithium-ion battery
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Polymerized ionic liquid diblock copolymer as solid-state electrolyte and separator in lithium-ion battery

机译:聚合离子液体二嵌段共聚物作为锂离子电池的固态电解质和隔膜

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摘要

A polymerized ionic liquid diblock copolymer (PILBCP-TFSI), poly(MMA-b-MUBIm-TFSI), consisting of an ionic liquid monomer, (1-[(2-methacryloyloxy)undecyl]-3-butylimidazolium bis(trifluoromethane)sulfonamide) (MUBIm-TFSI), and a non-ionic monomer, methyl methacrylate (MMA), was synthesized via reverse addition fragmentation chain transfer polymerization followed by anion exchange metathesis. Free standing, mechanically stable transparent solid polymer films were produced with PILBCP-TFSI containing 1 M lithium bis(trifluoromethane)sulfonamide in 1-ethyl-3-methylimidazolium bis(trifluoromethylsulfonyl)imide (Li-TFSI/EMIm-TFSI). The resulting PILBCP-TFSI + Li-TFSI/EMIm-TFSI films possessed ion conductivities from 1 to 10 mS cm(-1) from 25 degrees C to 105 degrees C. Solid-state lithium -ion coin cell batteries were assembled and tested at room temperature with PILBCP-TFSI + Li-TFSI/EMIm-TFSI films as the solid-state electrolyte and separator and resulted in a maximum discharge capacity of 112 mAh g(-1) at 0.1 C with a Coulombic efficiency greater than 94% over 100 cycles. For the first time, these results demonstrate the feasibility of PIL block copolymers as solid-state electrolytes and separators in lithium ion batteries. (C) 2016 Elsevier Ltd. All rights reserved.
机译:一种聚合的离子液体二嵌段共聚物(PILBCP-TFSI),聚(MMA-b-MUBIm-TFSI),由离子液体单体,(1-[(2-甲基丙烯酰氧基)十一烷基] -3-丁基咪唑鎓双(三氟甲烷)磺酰胺)组成)(MUBIm-TFSI),并通过反向加成断裂链转移聚合反应和阴离子交换复分解反应合成了非离子单体甲基丙烯酸甲酯(MMA)。用在1乙基-3-甲基咪唑鎓双(三氟甲基磺酰基)酰亚胺(Li-TFSI / EMIm-TFSI)中含有1 M双(三氟甲烷)磺酰胺锂的PILBCP-TFSI生产自立式机械稳定透明固体聚合物薄膜。所得的PILBCP-TFSI + Li-TFSI / EMIm-TFSI膜在25摄氏度至105摄氏度下具有1到10 mS cm(-1)的离子电导率。固态锂离子纽扣电池已组装并在进行测试室温下以PILBCP-TFSI + Li-TFSI / EMIm-TFSI膜为固态电解质和隔膜,并在0.1 C时产生最大放电容量112 mAh g(-1),库仑效率大于94% 100个循环。这些结果首次证明了PIL嵌段共聚物在锂离子电池中作为固态电解质和隔板的可行性。 (C)2016 Elsevier Ltd.保留所有权利。

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