皇帝的新衣:以羊毛纤维为电极基底的新型纺织超级电容器

Alyssa Grube , Ahmad Arabi Shamsabadi , Mostafa Dadashi Firouzjaei , Syed Ibrahim Gnani Peer Mohamed , Laurel Hilger , Mark Elliott , Kaitlin McKenzie , Mona Bavarian
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引用次数: 1

摘要

基于纺织品的超级电容器(TSC)正被用于满足对移动、安全和方便的能源的日益增长的需求,以为个人电子设备供电。为此,可穿戴技术中使用的智能纺织品需要由易于制造的高导电纱线制成。迄今为止,合成和纤维素基纱线仅用于TSC的制造,而其他纱线尚未被探索。在这里,我们使用了用于TSC的导电蛋白质基纱线,并报道了用Ti3C2Tx MXene涂覆的羊毛作为潜在电极材料的使用。为了编织TSS,用MXene薄片涂覆羊毛和棉纱,并使用扫描电子显微镜(SEM)和X射线光电子能谱(XPS)对其表面进行表征。进行电化学表征以检查羊毛和棉基MXene电极作为基底的性能,并确定电荷存储和电阻行为。这些测试表明,羊毛TSS表现出更多的赝电容行为,而棉花TSS则表现出更宽的电流范围。在5mV/s的扫描速率下,棉TSS呈现823.9mF/cm2的面电容,而羊毛TSS的该值为284mF/cm2。还测试了纱线在各种机械变形条件下和洗涤后的性能,以评估TSC的稳定性。这项研究表明了蛋白质基纱线作为电极基底的潜力,可以集成MXene来制造基于智能纺织品的设备。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Emperor's new clothes: Novel textile-based supercapacitors using sheep wool fiber as electrode substrate

Emperor's new clothes: Novel textile-based supercapacitors using sheep wool fiber as electrode substrate

Textile-based supercapacitors (TSCs) are being used to meet the ever-increasing demand for mobile, safe, and convenient energy sources to power personal electronic devices. To that end, the smart textiles used in wearable technology need to be made from highly conductive yarns that are easily manufacturable. To date, synthetic- and cellulosic-based yarns have been exclusively used for the fabrication of TSCs, while other yarns have not been explored. Here, we used conductive protein-based yarns for TSCs and report on the use of wool coated with Ti3C2Tx MXene as a potential electrode material. To knit TSCs, wool and cotton yarns were coated with MXene flakes and their surfaces were characterized using Scanning Electron Microscopy (SEM) and X-Ray Photoelectron Spectroscopy (XPS). The electrochemical characterization was conducted to examine the performance of wool- and cotton-based MXene electrodes as substrates and determine charge storage and resistive behavior. These tests showed that wool TSCs exhibited more pseudocapacitive behavior, while cotton TSCs exhibited a wider current range. At a scan rate of 5 mV/s, cotton TSCs presented an areal capacitance of 823.9 mF/cm2 while this value for the wool TSCs was 284 mF/cm2. The performance of yarns was also tested under various mechanical deformation conditions and after washing in order to assess the stability of TSCs. This study indicates the potential of protein-based yarns as electrode substrates for integration of MXene to fabricate smart textile-based devices.

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