Reduced Graphene Oxide-sno2-Polyaniline Ternary Composite for High-Performance Supercapacitors

V. Jayaweera, W.L.N.C. Liyanage, R.C.L. De Silva, S. Rosa, I. Kottegoda
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引用次数: 6

Abstract

A novel symmetric supercapacitor electrode material, rGO-SnO2-polyaniline nanocomposite,was synthesized using graphite oxide, SnCl2.2H2O, and pure Aniline as precursors in a scalable and straightforward one-pot process. Analysis revealed that the rGO-SnO2-polyaniline composite had been successfully synthesized. When the two-electrode supercapacitor was assembled using 1M H2SO4, it showed an outstanding specific gravimetric capacitance of 524.2 F/g at a 5 mV/s scan rate. To the best of our knowledge, such a higher value for a two-electrode specific capacitance for a supercapacitor was never reported.Furthermore, even at a high current density of 1 A/g, the material disclosed an outstanding charge-discharge characteristic. Thus, the rGO-SnO2-polyaniline nanocomposite couldalso be used as an electrode for commercial supercapacitors.
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高性能超级电容器用还原氧化石墨烯-sno2-聚苯胺三元复合材料
以氧化石墨、SnCl2.2H2O和纯苯胺为前驱体,采用一锅法合成了一种新型对称超级电容器电极材料——氧化石墨-氧化锡-聚苯胺纳米复合材料。分析表明,rgo - sno2 -聚苯胺复合材料已成功合成。当用1M H2SO4组装双电极超级电容器时,在5 mV/s扫描速率下,其比重电容达到524.2 F/g。据我们所知,如此高的双电极特定电容值从未被报道过。此外,即使在1 a /g的高电流密度下,该材料也显示出突出的充放电特性。因此,rgo - sno2 -聚苯胺纳米复合材料也可以用作商业超级电容器的电极。
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