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首页> 外文期刊>Electrochimica Acta >Electrochemical performances of electric double layer capacitor with UV-cured gel polymer electrolyte based on poly[(ethylene glycol)diacrylate]-poly(vinylidene fluoride) blend
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Electrochemical performances of electric double layer capacitor with UV-cured gel polymer electrolyte based on poly[(ethylene glycol)diacrylate]-poly(vinylidene fluoride) blend

机译:聚[(乙二醇)二丙烯酸酯]-聚偏二氟乙烯共混物的紫外线固化凝胶聚合物电解质双电层电容器的电化学性能

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Poly[(ethylene glycol)diacrylate]-poly(vinylidene fluoride), a gel polymer blend with ethylene carbonate:dimethyl carbonate:ethylmethyl carbonate (EC:DMC:EMC, 1:1:1 volume ratio) and containing l.0M of lithium hexafluoro phosphate (LiPF{sub}6) as liquid components, is employed as a gel polymer electrolyte for an electric double layer capacitor (EDLC). Its electrochemical characteristics is compared with that of liquid organic electrolyte mixture of ethylene carbonate, dimethyl carbonate and ethylmethyl carbonate in a 1:1:1 volume ratio containing l.0M LiPF{sub}6 salt. The specific surface area of the activated carbon powder as an active material is 1908 m{sup}2/g. Liquid poly [(ethylene glycol)diacrylate] (PEGDA) oligomer with a high retention capability of liquid electrolytes is cured by UV irradiation and poly(vinylidene fluoride)-hexafluoropropylene (PVdF-HFP) copolymer with a porous structure endows polymer matrix with high mechanical strength. The specific capacitance of EDLC using the gel polymer electrolyte (GPE-EDLC) shows 120 F/g, which is better than the liquid organic electrolyte. Good cycling efficiency is observed for a GPE-EDLC with high retention capability of liquid components. The high specific capacitance and good cycling efficiency are most likely due to the polarization resistance of EDLC with the gel polymer electrolyte, which is lower than the liquid organic electrolyte. This may result from the distinguished adhesion between the activated carbon electrode and the gel polymer electrolyte, as well as high retention capability of liquid components. Power densities of GPE-EDLC and LOE-EDLC shows 1.88 kW/kg and 1.21 kW/kg, respectively. However, the energy densities are low in both electrolytes. The GPE-EDLC exhibits rectangular cyclic voltammogram similar to an ideal EDLC within operating voltage range of 0 V-2.5 V. It should be noted that a region of electric double layer means a wide voltage and a rapid formation. Redox currents of both EDLCs are not observed in the sweep region and the cyclic voltammograms are unchanged on repeated runs. The observed leakage current shows 49 μA after 720 s at a constant voltage of 2.5 V, due to the high ionic conductivity of 1.5 × 10{sup}(-3) S cm{sup}(-1) during storage time. Swelling and well-developed pore structures of the GPE blend films allow ions and solvents to move easily.
机译:聚[(乙二醇)二丙烯酸酯]-聚偏二氟乙烯,一种与碳酸亚乙酯:碳酸二甲酯:碳酸乙基甲基碳酸酯(EC:DMC:EMC,1:1:1体积比)的凝胶聚合物共混物,含有1.0M锂作为液体组分的六氟磷酸酯(LiPF {sub} 6)被用作双电层电容器(EDLC)的凝胶聚合物电解质。将其电化学特性与碳酸亚乙酯,碳酸二甲酯和碳酸乙基甲基酯的液体有机电解质混合物(以1.0M LiPF {sub} 6盐的体积比为1:1:1)进行比较。作为活性材料的活性炭粉末的比表面积为1908m {sup} 2 / g。具有高液体保留能力的液体聚[(乙二醇)二丙烯酸酯](PEGDA)低聚物可通过紫外线辐射进行固化,具有多孔结构的聚(偏二氟乙烯)-六氟丙烯(PVdF-HFP)共聚物可赋予聚合物基质较高的机械性能强度。使用凝胶聚合物电解质(GPE-EDLC)的EDLC的比电容显示为120 F / g,比液体有机电解质更好。对于GPE-EDLC具有良好的液体成分保留能力,观察到了良好的循环效率。高比电容和良好的循环效率最可能是由于EDLC与凝胶聚合物电解质的极化电阻低于液体有机电解质。这可能是由于活性炭电极与凝胶聚合物电解质之间的显着粘附以及液体成分的高保留能力所致。 GPE-EDLC和LOE-EDLC的功率密度分别为1.88 kW / kg和1.21 kW / kg。但是,两种电解质的能量密度均较低。在0 V至2.5 V的工作电压范围内,GPE-EDLC呈现出类似于理想EDLC的矩形循环伏安图。应注意,双电层区域意味着宽电压和快速形成。在扫描区域中未观察到两个EDLC的氧化还原电流,并且循环伏安图在重复运行时未发生变化。由于在存储期间1.5×10 {sup}(-3)S cm {sup}(-1)的高离子电导率,在恒定电压为2.5 V的情况下,在720 s后观察到的泄漏电流为49μA。 GPE共混膜的膨胀和发达的孔结构使离子和溶剂易于移动。

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