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Development of High-Performance Supercapacitor based on a Novel Controllable Green Synthesis for 3D Nitrogen Doped Graphene

机译:基于新型可控绿色合成的3D氮掺杂石墨烯高性能超级电容器的开发

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摘要

3D sponge nitrogen doped graphene (NG) was prepared economically from waste polyethylene-terephthalate (PET) bottles mixed with urea at different temperatures using green approach via a novel one-step method. The effect of temperature and the amount of urea on the formation of NG was investigated. Cyclic voltammetry and impedance spectroscopy measurements, revealed that nitrogen fixation, which affects the structure and morphology of prepared materials improve the charge propagation and ion diffusion. The prepared materials show outstanding performance as a supercapacitor electrode material, with the specific capacitance going up to 405 F g−1 at 1 A g−1. An energy density of 68.1 W h kg−1 and a high maximum power density of 558.5 W kg−1 in 6 M KOH electrolytes were recorded for the optimum sample. The NG samples showed an appropriate cyclic stability with capacitance retention of 87.7% after 5000 cycles at 4 A g−1 with high charge/discharge duration. Thus, the prepared NG herein is considered to be promising, cheap material used in energy storage applications and the method used is cost-effective and environmentally friendly method for mass production of NG in addition to opening up opportunities to process waste materials for a wide range of applications.
机译:使用绿色方法通过新颖的一步法,从混有尿素的废聚对苯二甲酸乙二醇酯(PET)瓶中经济地制备了3D海绵氮掺杂石墨烯(NG)。研究了温度和尿素含量对NG形成的影响。循环伏安法和阻抗谱法测量表明,固氮影响制备材料的结构和形态,可改善电荷传播和离子扩散。所制备的材料作为超级电容器电极材料表现出优异的性能,在1 A g -1 时的比电容高达405 F g -1 。最佳样品的能量密度为68.1 W h kg -1 ,最大最大功率密度为558.5 W kg -1 。 NG样品表现出适当的循环稳定性,在4 A g -1 进行5000次循环后,电容保持率为87.7%,具有高的充电/放电持续时间。因此,本文中制备的NG被认为是有前途的,廉价的材料,用于能量存储应用,并且所使用的方法是用于大规模生产NG的成本有效且环境友好的方法,此外还提供了广泛加工废料的机会。应用程序。

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