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Supercapacitors based on conducting polymersanotubes composites

机译:基于导电聚合物/纳米管复合材料的超级电容器

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Three types of electrically conducting polymers (ECPs), i.e. polyaniline (PANI), polypyrrole (PPy) and poly-(3,4-ethylenedioxythiophene) (PEDOT) have been tested as supercapacitor electrode materials in the form of composites with multiwalled carbon nanotubes (CNTs). The energy storage in such a type of composite combines an electrostatic attraction as well as quick faradaic processes called pseudo-capacitance. It has been shown that carbon nanotubes play the role of a perfect backbone for a homogenous distribution of ECP in the composite. It is well known that pure conducting polymers are mechanically weak, hence, the carbon nanotubes preserve the ECP active material from mechanical changes (shrinkage and breaking) during long cycling. Apart of excellent conducting and mechanical properties, the presence of nanotubes improves also the charge transfer that enables a high charge/discharge rate. For an optimal use of ECPs in electrochemical capacitors, a special electrode composition with ca. 20 wt.% of CNTs and a careful selection of the potential range is necessary. The capacitance values ranging from 100 to 330 F g~(-1) could be reached for different asymmetric configurations with a capacitor voltage from 0.6 to 1.8 V. It is also noteworthy that such a type of ECP/CNTs composite does not need any binding substance that is an important practical advantage.
机译:已经测试了三种类型的导电聚合物(ECP),即聚苯胺(PANI),聚吡咯(PPy)和聚-(3,4-乙撑二氧噻吩)(PEDOT)作为具有多壁碳纳米管的复合材料形式的超级电容器电极材料(碳纳米管)。这种类型的复合材料中的能量存储结合了静电引力以及称为伪电容的快速法拉第过程。已经表明,碳纳米管起着完美骨架的作用,使ECP在复合物中均匀分布。众所周知,纯导电聚合物的机械强度较弱,因此,碳纳米管可防止ECP活性材料在长时间循环中发生机械变化(收缩和断裂)。除了优异的导电和机械性能外,纳米管的存在还改善了电荷转移,从而实现了高充电/放电速率。为了在电化学电容器中最佳地使用ECP,需要使用一种特殊的电极组合物。需要20%(重量)的CNT和仔细选择电位范围。对于具有0.6至1.8 V电容器电压的不同不对称配置,可以达到100至330 F g〜(-1)的电容值。同样值得注意的是,这种类型的ECP / CNTs复合材料不需要任何粘合物质是重要的实践优势。

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