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Low cost, high performance supercapacitor electrode using coconut wastes: eco-friendly approach简

机译:使用椰子废料的低成本,高性能超级电容器电极:环保方法

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Low cost, high performance supercapacitor electrodes were fabricated using coconut waste as precursor. Simple one step pyrolysis is adopted to get the spherical shaped particle where lignocellulosic nature of carbon converts into porous carbon nanospheres. Three types of coconut wastes, namely, coconut fiber(CF), coconut leaves(CL) and coconut stick(CS) have been studied and compared for their application in supercapacitors. Uniform spherical shape with particle size ranging from 30 to 60 nm for leaves and sticks and ~20 nm for fibers was obtained. The electrochemical properties of the porous carbon nanospheres were studied using cyclic voltammetry(CV), chronopotentiometry(CP) and electrochemical impedance spectroscopy(EIS). The porous carbon nanospheres derived from all the three biowaste samples show good electrochemical performance for supercapacitor application. Porous carbon nanospheres derived from coconut fiber exhibited maximum specific capacitance of 236 F/g followed by coconut stick and coconut leaves with 208 and 116 F/g respectively at a scan rate of 2 m V/s. Further impedance studies showed a charge transfer resistance of 4.9 for the porous carbon nanospheres derived from coconut fiber, while those from coconut leaves and coconut stick exhibited a slightly higher resistance of 6 and14.2, respectively. The simple eco-friendly approach we have demonstrated for synthesizing coconut waste based carbon nanospheres makes them excellent candidates for future, low-cost, energy storage devices.
机译:低成本,使用椰子废物作为前体制造高性能超级电容器电极。采用简单的一步热解用于获得球形颗粒,其中碳的木质纤维素性质转化为多孔碳纳米球。已经研究了三种类型的椰子废物,即椰子纤维(CF),椰子叶(Cl)和椰子棒(CS),并将其在超级电容器中的应用进行比较。颗粒尺寸范围为30至60nm的均匀球形,得到叶子和粘附〜20nm。使用环状伏安法(CV),时分测定量(CP)和电化学阻抗光谱(EIS)研究多孔碳纳米球的电化学性质。衍生自所有三种BiOWaste样品的多孔碳纳米球,对超级电容器施用显示出良好的电化学性能。源自椰子纤维的多孔碳纳米球,其具有236 f / g的最大特异性电容,然后以2mV / s的扫描速率分别具有208和116 f / g的椰子棒和椰子叶。进一步的阻抗研究表明,对于源自椰子纤维的多孔碳纳米球,其电荷转移电阻为4.9,而来自椰子叶和椰子棒的多孔碳纳米分别表现出6和14.2的较高耐高量。我们已经证明合成椰子废料的碳纳米球的简单环保方法使其成为未来,低成本,储能设备的优秀候选者。

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