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Highly Capacitive Mesoporous Polyaniline Spheres as Scalable and High Electrochemical Performance Supercapacitor Electrode

机译:高电容性介孔聚苯胺球作为可扩展和高电化学性能超级电容器电极

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This article demonstrates morphological based fabrication of Polyaniline mesopores(PANI_(MS))via the standard polymerization approach using Triton as an additive and 0.1 M H2SO4 as an electrolyte to achieve improved specific capacity(736 Fg-1)in contrast to reported bulk PANI as well as PANI sphere morphologies.PANI_(MS1)exhibit long cyclic stability and capacitive retention ~83% in 0.1 M H2SO4 electrolyte after 5000 cycles.This easy and low-cost fabrication of PANI_(MS)was conducted by varying minimal amount of Triton in 0.1 M H2SO4 electrolyte solution to form mesopores.The adsorption and desorption isotherm of the mesopores suggests a specific surface area of 50.9 m~2g-1with a pore diameter of 2.2 nm.The protocol followed to form these PANI_(MS)involves the variation of surfactant Triton to achieve sphere morphology thereby enhancing the charge storage property of PANI.These spheres also possess an enhanced electrical conductivity to be around ~23 S/m than their bulk counterpart.The electrochemical assays show that there is excellent electrolyte ion penetration in the H2SO4 electrolyte which promotes a rapid ion transport to the PANI_(MS)active sites.Also,a low value of R_(ct)~2.17 Ω helps in giving a good capacitive performance of the PANI_(MS1)electrode.The electrochemical impedance spectroscopy(EIS)analysis shows a phase degree at 68°,response frequency at 0.38 Hz and time constant at 2.63 s.The study shows the present mesopores morphology of PANI projects to be one of the good electrode candidates for supercapacitor applications.
机译:本文展示了基于形态的聚苯胺中孔(PANI_(MS))通过使用Triton作为添加剂的标准聚合方法和0.1 M H2SO4作为电解质来实现改进的特定能力(736 fg-1),与报道的散装pani相比,以及PANI球形态。PANI_(MS1)在5000循环后在0.1 m H2SO4电解质中表现出长的循环稳定性和电容率〜83%。通过不同的pani_(MS),通过不同的triton中的triton量进行了轻松且低成本的制造。 0.1 M H2SO4电解质溶液形成中孔。中孔的吸附和解吸等温线表明,特定的表面积为50.9 m〜2g-1,孔径为2.2 nm。表面活性剂Triton以实现球体形态,从而增强了PANI的电荷存储特性。这些球体还具有增强的电导率,大约是大约23 s/m。电化学测定表明,H2SO4电解质中有出色的电解质离子渗透率,该电解质促进了向PANI_(MS)活动位点的快速离子传输。此外,R_(CT)〜2.17Ω的低值有助于提供良好的能力性能的良好的能力性能PANI_(MS1)电极。电化学阻抗光谱光谱(EIS)分析显示,在68°处的相位度为68°,响应频率为0.38 Hz,时间常数为2.63。研究表明,PANI的当前中孔形态是PANI Projects是其中之一,是其中之一。超级电容器应用的良好电极候选物。

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