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Low-cost supercapacitor based on multi-walled carbon nanotubes and activated carbon derived from Moringa Oleifera fruit shells

机译:基于多壁碳纳米管和辣木果壳衍生活性炭的低成本超级电容器

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摘要

An electric double-layer capacitor (EDLC) was fabricated using multi-walled carbon nanotubes (MWCNT) and activated carbon (AC) derived from fruit shells as electrode material. The carbonization temperature and the weight ratio of the fruit shells to the activating agent were varied to determine the best condition in the fabrication of the electrodes. Activation of the carbonized fruit shells by ZnCl resulted in the formation of pores as verified by the scanning electron micrographs. Energy dispersive X-ray analyses show that the washing of the carbonized sample resulted in the removal of zinc and chlorine residues. The supercapacitor electrodes were fabricated by adding polyvinylidene fluoride and N-methylpyrrolidone to the MWCNT-AC mixture to form a slurry and was cast onto a nickel foam. The capacitance of the fabricated electrodes was determined using a potentiostat. The activated carbon with a carbonization temperature of 800 °C and a 1:2 weight ratio between the fruit shells and ZnCl was observed to have the highest capacitance of 130 F g and was duplicated to fabricate the supercapacitor electrodes. A glass microfiber filter was soaked in 3 M KOH and placed in between the two electrodes. The specific capacitance of the EDLC was found to be 122 F g at a current density of 0.5 A g , average energy density of 17 W h kg , average power density of 1.5 kW kg and an equivalent series resistance of 1.6 Ω. After 100 scans with a scan rate of 0.1 V s , the percent decrease in capacitance was calculated to be 2.65 % of its original capacitance.
机译:使用多壁碳纳米管(MWCNT)和源自果壳的活性炭(AC)作为电极材料,制造了双电层电容器(EDLC)。改变碳化温度和果壳与活化剂的重量比,以确定电极制造中的最佳条件。 ZnCl活化的碳化果壳导致形成孔,如通过扫描电子显微照片所证实的。能量色散X射线分析表明,碳化样品的洗涤导致锌和氯残留物的去除。通过将聚偏二氟乙烯和N-甲基吡咯烷酮添加到MWCNT-AC混合物中以形成浆料来制造超级电容器电极,并将其浇铸在镍泡沫上。使用恒电位仪确定所制造电极的电容。观察到碳化温度为800°C,果壳和ZnCl之间重量比为1:2的活性炭具有130 F g的最高电容,可以复制以制造超级电容器电极。将玻璃微纤维过滤器浸泡在3 M KOH中,并置于两个电极之间。发现EDLC的比电容为122 F g,电流密度为0.5 A g,平均能量密度为17 W h kg,平均功率密度为1.5 kW kg,等效串联电阻为1.6Ω。在以0.1 V s的扫描速率进行100次扫描后,电容的减小百分比计算为其原始电容的2.65%。

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