首页> 外文期刊>Dalton transactions: An international journal of inorganic chemistry >Carbon nanospheres derived from Lablab purpureus for high performance supercapacitor electrodes: a green approach
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Carbon nanospheres derived from Lablab purpureus for high performance supercapacitor electrodes: a green approach

机译:衍生自Lablab Purpureus的碳纳米球用于高性能超级电容器电极:绿色方法

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摘要

Carbon nanospheres derived from a natural source using a green approach were reported. Lablab purpureus seeds were pyrolyzed at different temperatures to produce carbon nanospheres for supercapacitor electrode materials. The synthesized carbon nanospheres were analyzed using SEM, TEM, FTIR, TGA, Raman spectroscopy, BET and XRD. They were later fabricated into electrodes for cyclic voltammetry, galvanostatic charge/discharge and electrochemical impedance spectroscopy testing. The specific capacitances were found to be 300, 265 and 175 F g(-1) in 5 M KOH electrolyte for carbon nanospheres synthesized at 800, 700 and 500 degrees C, respectively. These are on a par with those of prior electrodes made of biologically derived carbon nanospheres but the cycle lives were remarkably higher than those of any previous efforts. The electrodes showed 94% capacitance retention even after 5200 charge/discharge cycles entailing excellent recycling durability. In addition, the practical symmetrical supercapacitor showed good electrochemical behaviour under a potential window up to 1.7 V. This brings us one step closer to fabricating a commercial green electrode which exhibits high performance for supercapacitors. This is also a waste to wealth approach based carbon material for cost effective supercapacitors with high performance for power storage devices.
机译:报道了使用绿色方法衍生自天然来源的碳纳米球。 Lablab purpureus种子在不同的温度下热解,以产生用于超级电容器电极材料的碳纳米球。使用SEM,TEM,FTIR,TGA,拉曼光谱,BET和XRD分析合成的碳纳米球。它们后来被制造成用于循环伏安法,电镀电荷/放电和电化学阻抗光谱检测的电极。在800,700和500摄氏度分别合成的碳纳米球中,发现特定电容为300,265和175fg(-1),用于分别为800,700和500摄氏度合成的碳纳米球。这些与由生物学衍生的碳纳米球制成的先前电极相提并论,但循环寿命比以往的任何努力的循环寿命显着高。即使在5200充电/放电循环中,电极也显示出94%的电容保留/放电循环,其呈现出优异的回收耐久性。此外,实际对称超级电容器在潜在的窗口下显示出良好的电化学行为,高达1.7 V.这使我们更接近制造商业绿色电极的一步,这对超级电容器具有高性能。这也是浪费对财富接近的碳材料,用于具有高性能的蓄电装置的高效超级电容器。

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