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首页> 外文期刊>Scientific reports. >Simultaneous Electrochemical Deposition of Cobalt Complex and Poly(pyrrole) Thin Films for Supercapacitor Electrodes
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Simultaneous Electrochemical Deposition of Cobalt Complex and Poly(pyrrole) Thin Films for Supercapacitor Electrodes

机译:超级电容器电极钴络合物和聚(吡咯)薄膜的同时电化学沉积

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Supercapacitors are beneficial as energy storage devices and can obtain high capacitance values greater than conventional capacitors and high power densities compared to batteries. However, in order to improve upon the overall cost, energy density, and charge-discharge rates, the electrode material of supercapacitors needs to be fine-tuned with an inexpensive, high conducting source. We prepared a Co(III) complex and polypyrrole (PPy) composite thin films (CoN4-PPy) that was electrochemically deposited on the surface of a glassy carbon working electrode. Cyclic voltammetry studies indicate the superior performance of CoN4-PPy in charge storage in acidic electrolyte compared to alkaline and organic solutions. The CoN4-PPy material generated the highest amount of specific capacitance (up to 721.9?F/g) followed by Co salt and PPy (Co-PPy) material and PPy alone. Cyclic performance studies showed the excellent electrochemical stability of the CoN4-PPy film in the acidic medium. Simply electrochemically depositing an inexpensive Co(III) complex with a high electrically conducting polymer of PPy delivered a superior electrode material for supercapacitor applications. Therefore, the results indicate that novel thin films derived from Co(III) metal complex and PPy can store a large amount of energy and maintain high stability over many cycles, revealing its excellent potential in supercapacitor devices.
机译:超级电容器与能量存储装置有益,并且与电池相比,可以获得比传统电容器和高功率密度大的高电容值。然而,为了改善整体成本,能量密度和充放电速率,超级电容器的电极材料需要用廉价,高导电源进行微调。我们制备了一种CO(III)络合物和聚吡咯(PPY)复合薄膜(CON4-PPY),其电化学沉积在玻碳碳工作电极的表面上。与碱性和有机溶液相比,循环伏安法研究表明Con4-PPY在酸性电解质中的电荷储存中的优异性能。 CON4-PPY材料产生最高量的特定电容(高达721.9〜F / g),然后是CO盐和PPY(共PPY)材料和PPY。循环性能研究表明,酸性介质中CON4-PPY膜的优异电化学稳定性。简单地用PPY的高导电聚合物电化学沉积廉价的CO(III)复合物,用于超级电容器应用的优异电极材料。因此,结果表明,来自CO(III)金属络合物和PPY的新型薄膜可以存储大量能量并在许多循环中保持高稳定性,揭示其超级电容器装置的优异潜力。

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