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首页> 外文期刊>RSC Advances >Highly stretchable hybrid nanomembrane supercapacitors
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Highly stretchable hybrid nanomembrane supercapacitors

机译:高度可伸缩的杂交纳米膜超级电容器

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摘要

Supercapacitors that are lightweight, mechanically deformable (stretchable, flexible) and electrochemically stable have potential for various applications like portable, wearable, and implantable electronics. Here we demonstrate a stretchable and high-performing hybrid nanomembrane supercapacitor. The hybrid nanomembrane is prepared by vapour phase polymerization (VPP) based nanoscopic PEDOT coating on carbon nanotube sheets (CNS) transferred onto an elastomeric substrate to form a wavy structure. The resulting wavy structured hybrid nanomembrane based supercapacitor exhibits high electrochemical performance and mechanical stretchability, simultaneously. The high specific capacitances and energy density (82 F g(-1), 11 mF cm(-2), and 7.28 W h kg(-1) at 0% strain) are retained under large mechanical deformation (77 F g(-1) and 6.87 W h kg(-1) at a biaxial strain of 600%). Moreover, there is only <1% degradation of capacitance ratio after 1000 cycles stretching/releasing and bending/unbending. This high mechanical cyclic stability is shown even during stretching/releasing and bending/unbending measured by dynamic cyclic voltammetry (CV). These results suggest that our supercapacitor is valuable in a wide range of applications that require it to be electrochemically stable under large mechanical deformation, such as strain sensors, wearable electronics and biomedical devices.
机译:超级电容器,重量轻,机械变形(可伸展,柔韧)和电化学稳定具有各种应用,如便携式,可穿戴和可植入的电子设备。在这里,我们证明了一种可拉伸和高性能的杂交纳米膜超级电容器。杂化纳米膜通过在将碳纳米管板(CNS)上的碳纳米管(CNS)上的纳米镜型胶圈涂层转移到弹性体基底上以形成波状结构来制备。所得的波状结构杂交纳米膜的超级电容器同时表现出高电化学性能和机械拉伸性。在大机械变形下保留高比电容和能量密度(82°F -1),11mF cm(-2),11mF cm(-2)和7.28Wh kg(-1)(77 f g( - 1)和6.87WH kg(-1)在600%的双轴应变中)。此外,1000个循环拉伸/释放和弯曲/不弯曲之后,电容比的电容比的劣化仅有<1%的劣化。即使在通过动态循环伏安法(CV)测量的拉伸/释放和弯曲/不应下,也显示出这种高机械环状稳定性。这些结果表明,我们的超级电容器在广泛的应用中是有价值的,需要在大型机械变形下进行电化学稳定,例如应变传感器,可穿戴电子设备和生物医学设备。

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  • 来源
    《RSC Advances》 |2016年第29期|共4页
  • 作者单位

    Hanyang Univ Dept Biomed Engn Ctr Self Powered Actuat Seoul 04763 South Korea;

    Hanyang Univ Dept Biomed Engn Ctr Self Powered Actuat Seoul 04763 South Korea;

    Univ Texas Dallas Alan G MacDiarmid NanoTech Inst Richardson TX 75083 USA;

    Univ Texas Dallas Alan G MacDiarmid NanoTech Inst Richardson TX 75083 USA;

    Hanyang Univ Dept Biomed Engn Ctr Self Powered Actuat Seoul 04763 South Korea;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 化学;
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