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Electrochemical capacitor improvement fabricated by carbon microfiber composite with admicellar-modified carbon nanotube

机译:碳微纤维复合材料与改性的碳纳米管制备的电化学电容器的改进

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Conventional electrochemical capacitors are usually made from activated carbon microfiber electrode, which has relatively low electrochemical capacitance. To improve performance of electrochemical capacitor, carbon nanotube (CNT) was used to incorporate in carbon microfiber. Firstly, CNT was coated with ultra-thin polyacrylonitrile (PAN) film coating using the admicellar polymerization technique to improve its dispersion in PAN matrix. Secondly, the mix solution of admicellar-modified CNT (Ad-CNT) and PAN in N,N-dimethylformamide (DMF) was prepared to produce microfiber by electrospinning. Lastly, microfiber was collected as a sheet, which was then stabilized and carbonized to be used as an electrode. The fabricated electrode using Ad-CNT/PAN was analyzed by SEM and TEM. SEM images show that the microfiber was uniform with approximately 2 mu m average diameter. TEM images display well alignment and good dispersion of Ad-CNT in the matrix. The electrode made from Ad-CNT/PAN exhibited a high specific capacitance of 125 F g(-1) at a scan rate of 3 mV s(-1) (based on cyclic voltammetry) and 82 F g(-1) at a specific current of 1 A g(-1) (based on galvanostatic charge/discharge). The percentage of relative specific capacitance retention of the prepared electrode was 70% after 1000 cycles. The results clearly show that the Ad-CNT played an effective role in improving dispersion in electrode leading to increase in electrical conductivity as well as electrical capacitance of the capacitor. (C) 2016 Elsevier B.V. All rights reserved.
机译:常规的电化学电容器通常由具有相对较低的电化学电容的活性炭微纤维电极制成。为了提高电化学电容器的性能,将碳纳米管(CNT)掺入到碳微纤维中。首先,采用原子聚合技术用超薄聚丙烯腈(PAN)薄膜涂层涂覆CNT,以改善其在PAN基质中的分散性。其次,制备了在N,N-二甲基甲酰胺(DMF)中的改性的碳纳米管(Ad-CNT)和PAN的混合溶液,以通过电纺丝生产微纤维。最后,将微纤维收集为片,然后将其稳定并碳化以用作电极。使用Ad-CNT / PAN制成的电极通过SEM和TEM进行分析。 SEM图像表明,超细纤维是均匀的,平均直径约为2μm。 TEM图像显示出Ad-CNT在基质中的良好排列和良好分散性。由Ad-CNT / PAN制成的电极在3 mV s(-1)(基于循环伏安法)的扫描速率下显示出125 F g(-1)的高比电容,在300℃时显示出82 F g(-1)的高比电容。 1 A g(-1)的比电流(基于恒电流充电/放电)。制备的电极在1000次循环后的相对比电容保持率是70%。结果清楚地表明,Ad-CNT在改善电极中的分散性中起到了有效的作用,从而导致电容器的电导率和电容的增加。 (C)2016 Elsevier B.V.保留所有权利。

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