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High-performance fiber-shaped supercapacitors using carbon fiber thread (CFT)@polyanilne and functionalized CFT electrodes for wearable/stretchable electronics

机译:使用碳纤维线(CFT)@聚苯胺和功能化CFT电极的高性能纤维状超级电容器,用于可穿戴/可拉伸电子产品

摘要

Fiber-shaped supercapacitor (FSC) is a promising energy storage device for wearable/stretchable electronics by virtue of its unique features such as high flexibility, knittability, small-size and lightweight. However, the energy density of most FSC devices is limited by the relatively low operating voltage. Herein, we develop a solid-state asymmetric fiber-shaped supercapacitor made of carbon fiber thread@polyaniline and functionalized carbon fiber thread electrodes with high operating voltage (1.6 V). The as-prepared device shows a volumetric energy density up to 2 mWh cm(-3) which is higher than/compatible to most reported FSCs. The maximum power density of the device is 11 W cm(-3), which is comparable to typical commercial supercapacitors. Other than good rate capability, long cycle life and high volumetric capacitance, the proposed device has excellent flexibility. It can be embedded in a glove using a traditional weaving technology without degrading its capacitive performance at various bending conditions. To demonstrate the potential of our supercapacitor for stretchable electronics, we incorporate the device into a conventional elastic thread to form a stretchable supercapacitor. The capacitance of the stretchable device is well maintained even after stretching up to 100%, demonstrating its excellent stretchability. These promising results demonstrate the proposed supercapacitor has great potential as an efficient storage device for flexible and wearable electronics applications.
机译:纤维状超级电容器(FSC)凭借其独特的功能(例如高柔韧性,可编织性,小巧轻便)而成为可穿戴/可拉伸电子产品的有前途的储能设备。但是,大多数FSC器件的能量密度受到相对较低的工作电压的限制。在这里,我们开发了一种由碳纤维线@聚苯胺和功能化的碳纤维线电极制成的固态不对称纤维状超级电容器,该电极具有较高的工作电压(1.6 V)。所制备的设备显示出高达2 mWh cm(-3)的体积能量密度,该能量密度高于/兼容于大多数报道的FSC。该设备的最大功率密度为11 W cm(-3),与典型的商用超级电容器相当。除了良好的速率能力,长循环寿命和高体积电容外,该器件还具有出色的灵活性。它可以使用传统的编织技术嵌入手套中,而不会在各种弯曲条件下降低其电容性能。为了展示我们的超级电容器在可拉伸电子产品中的潜力,我们将设备整合到传统的弹性线中以形成可拉伸的超级电容器。即使在拉伸至100%之后,也可以很好地保持可拉伸设备的电容,这表明其出色的可拉伸性。这些令人鼓舞的结果表明,提出的超级电容器作为柔性和可穿戴电子应用的高效存储设备具有巨大潜力。

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