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From Soybean residue to advanced supercapacitors

机译:从大豆残渣到高级超级电容器

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摘要

Supercapacitor technology is an extremely timely area of research with fierce international competition to develop cost-effective, environmentally friendlier EC electrode materials that have real world application. Herein, nitrogen-doped carbons with large specific surface area, optimized micropore structure and surface chemistry have been prepared by means of an environmentally sound hydrothermal carbonization process using defatted soybean (i.e., Soybean meal), a widely available and cost-effective protein-rich biomass, as precursor followed by a chemical activation step. When tested as supercapacitor electrodes in aqueous electrolytes (i.e. H2SO4 and Li2SO4), they demonstrate excellent capacitive performance and robustness, with high values of specific capacitance in both gravimetric (250–260 and 176 F g−1 in H2SO4 and Li2SO4 respectively) and volumetric (150–210 and 102 F cm−3 in H2SO4 and Li2SO4 respectively) units, and remarkable rate capability (>60% capacitance retention at 20 A g−1 in both media). Interestingly, when Li2SO4 is used, the voltage window is extended up to 1.7 V (in contrast to 1.1 V in H2SO4). Thus, the amount of energy stored is increased by 50% compared to H2SO4 electrolyte, enabling this environmentally sound Li2SO4-based supercapacitor to deliver ~12 Wh kg−1 at a high power density of ~2 kW kg−1.
机译:超级电容器技术是一项非常及时的研究领域,在激烈的国际竞争中,他们正在开发具有实际应用价值的,成本效益高,对环境友好的EC电极材料。在此,已经通过使用脱脂大豆(即大豆粉)的无害水热碳化工艺制备了具有大比表面积,优化的微孔结构和表面化学的氮掺杂碳。生物质,作为前体,然后进行化学活化步骤。当在水性电解质(即H2SO4和Li2SO4)中作为超级电容器电极进行测试时,它们表现出出色的电容性能和鲁棒性,在重量分析中(250–260和176 F g -1 )中的比电容值很高。 H2SO4和Li2SO4)和体积(分别在H2SO4和Li2SO4中为150–210和102 F cm −3 )单位,以及显着的速率能力(在20 A g −时电容保持率> 60%两种媒体中均为1 )。有趣的是,当使用Li2SO4时,电压窗口会扩展到1.7 V(与之相比,在H2SO4中为1.1 V)。因此,与H 2 SO 4 电解质相比,存储的能量增加了50%,从而使这种对环境无害的Li 2 SO 4 的超级电容器可以以〜2 kW kg -1 的高功率密度提供〜12 Wh kg -1

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