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Significant enhancement of the electrochemical performance of hierarchical Co_3O_4 electrodes for supercapacitors via architecture design and training activation

机译:通过架构设计和训练激活,显着提高超级电容器的层级CO_3O_4电极的电化学性能

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摘要

Binder-free Co3O4 electrodes with hierarchical structures, nanoflowers and nanowire network, were directly grown on nickel foams with a facile hydrothermal strategy and subsequent annealing treatment. The architectures of the electrodes, flowers- or nanowires-dominated, can be selectively synthesized by simply controlling the reaction time of hydrothermal synthesis. It is clarified that the nanoflowers with mesoporous petals were constructed by the assembly of nanowires, resulting in the flowers-dominated Co3O4 electrode exhibiting enhanced electrochemical performance: including high specific capacitance (2.266 and 1.91 F cm(-2) at 1 and 10 mA cm(-2), respectively), remarkable rate capability and superior cycle stability. A cyclic voltammetry (CV) training technique was proposed to explore the full energy storage potential of Co3O4 electrode material for supercapacitors; after trained over 200 CV cycles at the scan rate of 5 mV s(-1), the specific capacitance of the flower-dominated electrode further enhanced from 2.266 to 4.472 F cm(-2) at current density of 1 mA cm(-2), coupled with excellent electrochemical performance: rate capability (80.3% capacity retention at 10 mA cm(-2)) and cycle stability (84.6% capacitive retention over 5000 GCD cycles). An asymmetric supercapacitor (ASC) was constructed by employing flower-dominated Co3O4 as positive electrode and activated carbon as negative electrode. The ASC device delivered a high energy density of 0.215 mWh cm(-2) at a power density of 1.49 mW cm 2. This encouraging result reveals that the flower architecture is acceptable for electrode material and provides a highly efficient training process to significantly enhance the electrochemical performance for supercapacitors.
机译:具有等级结构,纳米割草机和纳米线网络的无粘合剂CO3O4电极,直接在镍泡沫上生长,具有容易的水热策略和随后的退火处理。通过简单地控制水热合成的反应时间,可以选择性地合成电极,花或纳米线标准的架构。阐明了具有介孔花瓣的纳米辊由纳米线的组装构成,导致具有增强的电化学性能的花束占状的CO3O4电极:包括高比电容(2.266和1.91f cm(-2),1和10 ma cm (-2),分别是较差的速率能力和卓越的循环稳定性。提出了一种循环伏安法(CV)训练技术,用于探讨超级电容器CO3O4电极材料的全能量储存电位;在以5mV S(-1)的扫描速率超过200个CV循环之后,以1 mA cm的电流密度进一步增强的花束电极的比电容进一步增强至4.472厘米(-2)(-2) ),再加上优异的电化学性能:速率能力(80.3%的容量保持在10 mA cm(-2))和循环稳定性(84.6%超过5000 gcd循环的电容潴留)。通过使用花束CO 3 O 4作为正极和活性炭作为负电极来构建不对称超级电容器(ASC)。 ASC器件以1.49mM CM 2的功率密度提供0.215 mwh cm(-2)的高能量密度。该令人鼓舞的结果表明,花卉架构对于电极材料是可接受的,并提供高效的培训过程,以显着增强超级电容器的电化学性能。

著录项

  • 来源
    《Journal of Energy Storage》 |2021年第3期|102258.1-102258.14|共14页
  • 作者单位

    Guizhou Univ Coll Phys Guizhou Prov Key Lab Photoelect Technol & Applica Guiyang 550025 Peoples R China;

    Guangxi Univ Guangxi Novel Battery Mat Res Ctr Engn Technol Ctr Nanoenergy Res Sch Phys Sci & Technol Nanning 530004 Peoples R China;

    Guizhou Univ Coll Phys Guizhou Prov Key Lab Photoelect Technol & Applica Guiyang 550025 Peoples R China;

    Guangxi Univ Guangxi Novel Battery Mat Res Ctr Engn Technol Ctr Nanoenergy Res Sch Phys Sci & Technol Nanning 530004 Peoples R China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Supercapacitor; Hierarchical structure; Cyclic voltammetry training; Electrochemical properties;

    机译:超级电容器;层次结构;循环伏安训练;电化学性质;

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