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首页> 外文期刊>Journal of Colloid and Interface Science >Wet-spinning assembly and in situ electrodeposition of carbon nanotube-based composite fibers for high energy density wire-shaped asymmetric supercapacitor
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Wet-spinning assembly and in situ electrodeposition of carbon nanotube-based composite fibers for high energy density wire-shaped asymmetric supercapacitor

机译:湿式纺合组件及其基于碳纳米管复合纤维的高能量密度线形不对称超微涂料

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摘要

Wire-shaped supercapacitors (WSC) have attracted tremendous attention for powering portable electronic devices. However, previously reported WSC suffered from a complicated fabrication process and high cost. The objective of this study is to develop a facile and scalable process for the fabrication of high energy density WSC. We coupled the wet-spinning assembly with an in situ electrodeposition technique to prepare carbon nanotube (CNT)-based composite fibers. The charge balance between the electrodes was realized by controlling the deposition time of the pseudocapacitive materials. A wire-shaped asymmetric supercapacitor (WASC) was fabricated by twisting MnO2/CNT fiber cathode and PPy/CNT fiber anode with LiCl/PVA electrolyte. The flexible MnO2/CNT//PPy/CNT WASC operated in a broadened voltage range of 0-1.8 V exhibited a high capacitance of 17.5F cm(-3) (10.7F g(-1)). In addition, it delivered a maximum energy and power densities of 7.88 mWh cm(-3) (4.82 Wh kg(-1)) and 2.26 W cm(-3) (1382 W kg(-1)), respectively. The WASC device demonstrated satisfactory cycling stability with 86% capacitance retention, and its Coulombic efficiency remained at 96% after 5000 charge-discharge cycles. The contributions of the diffusion-controlled insertion and the surface capacitive effect were theoretically quantified to investigate the energy storage mechanism. The fabrication approaches hold potential for the construction of cost-effective and high-performance WSC. (C) 2020 Elsevier Inc. All rights reserved.
机译:丝形超级电容器(WSC)吸引了便携式电子设备供电的巨大关注。然而,先前报道的WSC遭受了复杂的制造过程和高成本。本研究的目的是开发一种用于制造高能量密度WSC的容易和可扩展的方法。我们通过原位电沉积技术耦合湿旋转组件以制备碳纳米管(CNT)基复合纤维。通过控制假壳材料的沉积时间来实现电极之间的电荷平衡。通过用LiCl / PVA电解质扭转MnO2 / CNT纤维阴极和PPY / CNT纤维阳极,制造丝形不对称超级电容器(WASC)。在0-1.8V的宽电压范围内操作的柔性MNO2 / CNT // PPY / CNT WASC表现出17.5Fcm(-3)(10.7Fg(-1))的高电容。此外,它还提供了7.88米Whe(-3)(4.82WH kg(-1))和2.26W(-3)(1382W kg(-1))的最大能量和音频密度。 WASC器件呈现令人满意的循环稳定性,电容保留86%,其库仑效率在5000充放电循环后保持96%。理论上大量地定量了扩散控制插入和表面电容效果的贡献以研究能量存储机制。制造方法占据成本效益和高性能WSC的潜力。 (c)2020 Elsevier Inc.保留所有权利。

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