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Geometrically intricate sheet-on-pillar/flake hierarchy embracing cobaltosic and manganese oxides over flexible carbon scaffold for binder-free high-energy-density supercapacitor

机译:在柔性碳支架上拥抱钴酸碱和氧化锰的几何复杂的柱上柱/片式层次结构,用于无粘合剂的高能密度超级电容器

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摘要

The proliferation of wearable electronics necessitates rational design and simple fabrication protocols of geometrically intricate multicomponent 3D hierarchical heterostructures over flexible scaffolds for high electrochemical performance and mechanically robust electrodes. In an attempt to meet the general design necessity for highly proficient supercapacitor electrodes by combining the strategies of conductivity modification, porous nanoform and lightweight substrate, we have realized a tailor-made hierarchical nanoform comprising 1D-2D and 2D-2D combination of cobaltosic and manganese oxides anchored on carbon cloth via simple hydrothermal techniques. Starting with bare carbon fiber, 1D nanopillar and 2D Co3O4 flake were developed on fabric initially, followed by which hierarchies were prepared via secondary growth of MnO2 sheet. Such typical arrangement makes full use of synergistic effects from both high specific capacitance of the morphology-tuned hybrid and high electrical conductivity of the underlying fiber, making them efficient electrodes for foldable supercapacitors. Carbon cloth-supported hybrid nanoforms deliver far superior performance compared to the individual structural units, where the optimized 2D-2D geometry shows maximum specific capacitance of 1396 F g(-1) at 0.3 A g(-1) and excellent rate capacity of 94% capacitance retention at 5 A g(-1). Discernable differences in the electrochemical behavior of different synthesized nanoforms were investigated in great detail on the basis of geometry-porosity-property correlation. Supercapacitors were assembled using the optimized Co3O4-MnO2 which exhibited an energy density of 91.9 Wh kg(-1) at a power density of 0.8 kW kg(-1) and delivered 90% of the initial specific capacitance after 5000 cycles at high current density. Such fascinating results of the as-fabricated supercapacitors highlight the combination of rational design and morphology tuning of nanoforms in maximizing the electrochemical performance and thereby providing a useful pathway to develop new electrode materials in the energy storage arena.
机译:可穿戴电子器件的增殖需要在高电化学性能和机械稳健电极的柔性支架上的几何复杂多组分3D层次异质结构的理性设计和简单的制造方案。为了通过组合电导率改性,多孔纳米型和轻质基材的策略来满足高度熟练的超级电容器电极的一般设计必要性,我们实现了包含1D-2D和2D-2D组合的钴菌和锰的量身定制的等级纳米型通过简单的水热技术锚定在碳布上。从裸碳纤维开始,最初在织物上开发1D纳米玻璃和2D CO3O4薄片,然后通过MNO2片材的二次生长制备层次结构。这种典型的布置可以充分利用来自形态学调谐混合的高比电容和底层光纤的高电导率的协同效应,使它们具有可折叠超级电容器的高效电极。与各个结构单元相比,碳布料支撑的混合纳米型具有远远卓越的性能,其中优化的2D-2D几何形状显示为0.3Ag(-1)的最大特定电容为1396f g(-1),优异的速率容量为94 5 a g(-1)的%电容保留。基于几何孔隙率 - 性质相关性,在不同合成纳米常规的电化学行为的可辨别差异。使用优化的CO3O4-MNO2组装超级电容器,其在功率密度为0.8kW kg(-1)的电力密度,在5000次以高电流密度下递送90%的初始特定电容的能量密度。如制造的超级电容器的这种迷人的结果突出了纳米型结构的合理设计和形态调谐的组合在最大化电化学性能,从而提供了一种在能量储存竞技场中开发新电极材料的有用途径。

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  • 来源
    《CrystEngComm》 |2018年第40期|共14页
  • 作者单位

    Jadavpur Univ Sch Mat Sci &

    Nanotechnol Kolkata 700032 India;

    St Thomas Coll Engn &

    Technol Kolkata 700023 India;

    Jadavpur Univ Sch Mat Sci &

    Nanotechnol Kolkata 700032 India;

    Jadavpur Univ Dept Phys Kolkata 700032 India;

    Jadavpur Univ Dept Phys Kolkata 700032 India;

    Jadavpur Univ Sch Mat Sci &

    Nanotechnol Kolkata 700032 India;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 化学工业;晶体学;
  • 关键词

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