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Expeditious and eco-friendly hydrothermal polymerization of PEDOT nanoparticles for binder-free high performance supercapacitor electrodes

机译:用于无粘合剂纳米粒子的迅速和生态友好的水热聚合,用于无粘合剂高性能超级电容器电极

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摘要

Poly(3,4-ethylenedioxythiophene) (PEDOT) is a promising conjugated polymer that has attracted attention because of its outstanding electronic properties, useful for a wide range of applications in energy storage devices. However, synthesis of high-quality PEDOT occurs via vapour phase polymerization and chemical vapour deposition techniques using extrinsic hard templates or complicated experimental setups. This study introduces a simple hydrothermal polymerization technique using ferric chloride (FeCl3) as an oxidizing agent to overcome the above drawback, which results in good conductive, crystalline PEDOT nanodendrites and nanospheres. The effects of varying the molar ratio of FeCl3 oxidant were investigated in terms of the structural, morphological and electrochemical properties of PEDOT. The supercapacitive performance of the as-polymerized PEDOT nanostructures was determined by fabricating an electrode without the aid of organic binders or conductive additives. PEDOT nanodendrites polymerized using 2.5 molar ratio of FeCl3 demonstrated enhanced electrochemical performance with a maximum specific capacitance of 284 F g(-1) with high energy density of 39.44 W h kg(-1) at 1 A g(-1) current density in 1 M H2SO4 electrolyte. Moreover, the sample possessed higher conductivity, better specific surface area, improved electrochemical properties, comparable crystallinity, and excellent cycling stability after 5000 charge/discharge cycles than the other PEDOT nanostructures. Importantly, the results establish that these materials afford good redox behaviors with better conductivity suitable for the development of an organic electrode-based supercapacitor with high specific charge capacity and stability.
机译:聚(3,4-乙二氧基噻吩)(PEDOT)是一种承诺的共轭聚合物,其由于其优异的电子性能而引起了受关注的,可用于储能装置中的各种应用。然而,使用外本硬模板或复杂的实验设置,通过气相聚合和化学气相沉积技术进行高质量佩特的合成。本研究介绍了使用氯化铁(FECL3)作为氧化剂的简单的水热聚合技术,以克服上述缺点,这导致良好的导电,结晶染色纳秒和纳米球。研究了转型的结构,形态学和电化学性质的影响,改变了FECL3氧化剂的摩尔比的影响。通过在没有有机粘合剂或导电添加剂的帮助下制造电极来测定AS聚合的型甲板纳米结构的超级电容性能。使用2.5摩尔比的FECL3聚合的PEDOT纳米二丁酸铅锌表现出增强的电化学性能,最大特定电容为284f g(-1),高能量密度为39.44WH kg(-1),在1A的电流密度下1米H2SO4电解质。此外,样品具有较高的导电性,更好的比表面积,改善的电化学性质,比较的电化学性质,比例在5000充电/放电循环之后的优异的循环稳定性,而不是其它染色纳米结构。重要的是,结果确定这些材料提供了良好的氧化还原行为,具有更好的导电性,适合于具有高特定电荷能力和稳定性的有机电极的超级电容器的开发。

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  • 来源
    《RSC Advances》 |2016年第111期|共11页
  • 作者单位

    Dongguk Univ Seoul Dept Chem Seoul 100715 South Korea;

    Dongguk Univ Seoul Dept Chem Seoul 100715 South Korea;

    Dongguk Univ Seoul Dept Chem Seoul 100715 South Korea;

    Dongguk Univ Seoul Dept Chem Seoul 100715 South Korea;

    Gangneung Wonju Natl Univ Dept Ceram Engn Kangnung 210702 South Korea;

    Gangneung Wonju Natl Univ Dept Ceram Engn Kangnung 210702 South Korea;

    Korea Inst Sci &

    Technol Photoelect Hybrids Res Ctr Seoul 02792 South Korea;

    Dongguk Univ Seoul Dept Chem Seoul 100715 South Korea;

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  • 正文语种 eng
  • 中图分类 化学;
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