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首页> 外文期刊>Electrochimica Acta >Balanced energy density and power density: Asymmetric supercapacitor based on activated fullerene carbon soot anode and graphene-Co 3O 4 composite cathode
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Balanced energy density and power density: Asymmetric supercapacitor based on activated fullerene carbon soot anode and graphene-Co 3O 4 composite cathode

机译:平衡能量密度和功率密度:基于活化富勒烯碳烟灰阳极和石墨烯-CO 3 O 4 < / CE:INF>复合阴极

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摘要

AbstractThe enhancement of energy density at high power density is highly desired in design of supercapacitor, which relies on the electrochemically accessible electrode area, electrons/ions diffusion channels of electrodes and the device assembly manner. Herein, graphitized and porous fullerene carbon soot is used as matrix for preparation of activated carbon (denoted as a-FC). The high specific surface area, hierarchical pore sizes and moderate graphitization degree of a-FC enable balanced specific capacitance, rate capability and cycleability. Meanwhile, graphene-Co3O4composite (GC) with cross-linked porous Co3O4nanofibers array onto graphene sheet is hydrothermally deposited on Ni foam substrate. The pseudocapacitive GC electrode can offer superior capacitance (1935 F?g?1at 5?A?g?1), rate capability (68% capacitance retaining ratio within 0.5–50?A?g?1) and considerable cycleability (17% capacitance decline within 2000 charge-discharge cycles) comprehensively. Furthermore, the asymmetric supercapacitor based on the a-FC and GC electrodes delivers balanced energy density (50.3–20.9?Wh kg?1), power density (786–12128?W?kg?1) and cycleability (77% initial capacitance maintaining ratio within 5000 charge-discharge cycles), highlighting the potential in efficient energy storage device.Graphical abstractDisplay OmittedHighlights?High electrons and ions conductivities of a-FC enable balanced capacitive properties.?Graphene-Co3O4composite with porous Co3O4nanofibers array on graphene was designed.?Balanced energy density and power density were achieved in asymmetric supercapacitor.]]>
机译:<![CDATA [ 抽象 在超级电容器的设计中强烈需要在高功率密度下提高能量密度,这依赖于电化学访问电极区域,电极的电子/离子扩散通道和装置组装方式。这里,石墨化和多孔富勒烯碳烟灰用作制备活性炭的基质(表示为A-Fc)。高比表面积,分层孔径尺寸和A-FC的中等石墨化程度使得能够平衡特定的电容,速率能力和环状。同时,Graphene-co 3 o 4 复合(GC)与交联多孔CO 3> 3 O 4 纳米纤维阵列在石墨烯片上水热沉积在Ni泡沫基板上。伪电容GC电极可以提供优异的电容(1935 F?G ?1 在5?a?g ?1 < / CE:sup>),速率能力(0.5-50内的68%电容保持比率为0.5-50内的电容滞留比率为a≤jΔ1)和相当大的环状(17%的电容下降全面的2000年充电放电循环。此外,基于A-Fc和GC电极的非对称超级电容器提供平衡的能量密度(50.3-20.9?Wh kg 1 ),功率密度(786- 12128?w?kg Δ1)和随着有效储能装置的潜力突出显示潜在的高效能量存储装置的潜在效能存储装置中的“柱”>α1 图形抽象 显示省略 亮点 A-FC的高电子和离子电导率实现平衡电容性质。 Graphene-Co 3 O 4 复合材料:多孔CO 3 O 4 Graphene上的纳米纤维阵列被设计。 均衡能量密度和功率密度不对称超级电容器。 ]]>

著录项

  • 来源
    《Electrochimica Acta》 |2018年第2018期|共12页
  • 作者单位

    School of Chemistry and Chemical Engineering Henan Key Laboratory of Boron Chemistry and Advanced Energy Materials Henan Normal University;

    School of Chemistry and Chemical Engineering Henan Key Laboratory of Boron Chemistry and Advanced Energy Materials Henan Normal University;

    School of Chemistry and Chemical Engineering Henan Key Laboratory of Boron Chemistry and Advanced Energy Materials Henan Normal University;

    School of Chemistry and Chemical Engineering Henan Key Laboratory of Boron Chemistry and Advanced Energy Materials Henan Normal University;

    School of Chemistry and Chemical Engineering Henan Key Laboratory of Boron Chemistry and Advanced Energy Materials Henan Normal University;

    School of Environment Henan Normal University;

    School of Environment Henan Normal University;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 电化学工业;物理化学(理论化学)、化学物理学;
  • 关键词

    Activated carbon; Graphene-Co3O4composite; Porous nanofibers array; Asymmetric supercapacitor;

    机译:活性炭;石墨烯-CO3O4COMPOSE;多孔纳米纤维阵列;不对称超级电容器;

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