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首页> 外文期刊>Journal of Colloid and Interface Science >Enhanced electrochemical performance of CuCo2S4/carbon nanotubes composite as electrode material for supercapacitors
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Enhanced electrochemical performance of CuCo2S4/carbon nanotubes composite as electrode material for supercapacitors

机译:增强Cuco2S4 /碳纳米管复合材料的电化学性能作为超级电容器的电极材料

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CuCo2S4 is regarded as a promising electrode material for supercapacitor, but has inferior conductivity and poor cyclic stability which restrict its wide-range applications. In this work, hierarchically hybrid composite of CuCo2S4/carbon nanotubes (CNTs) was synthesized using a facile hydrothermal and sulfuration process. The embedded CNTs in the CuCo2S4 matrix provided numerous effective paths for electron transfer and ion diffusion, and thus promoted the faradaic reactions of the CuCo2S4 electrode in the energy storage processes. The CuCo2S4/CNTs-3.2% electrode exhibited a significantly increased specific capacitance of 557.5 F g(-1) compared with those of the pristine CuCo2S4 electrode (373.4 F g(-1)) and CuO/Co3O4/CNTs-3.2% electrode (356.5 F g(-1)) at a current density of 1 A g(-1). An asymmetric supercapacitor (ASC) was assembled using the CuCo2S4/CNTs-3.2% as the positive electrode and the active carbon as the negative electrode, which exhibited an energy density of 23.2 Wh kg(-1) at a power density of 402.7 W kg(-1). Moreover, the residual specific capacitance of this ASC device retained 85.7% of its original value after tested for 10,000 cycles, indicating its excellent cycle stability. (C) 2019 Elsevier Inc. All rights reserved.
机译:Cuco2S4被认为是用于超级电容器的有希望的电极材料,但具有较差的导电性和循环稳定性差,限制其广泛应用。在这项工作中,使用容易的水热和硫化方法合成Cuco2S4 /碳纳米管(CNT)的层次杂化复合物。 Cuco2S4矩阵中的嵌入式CNT为电子转移和离子扩散提供了许多有效的路径,从而促进了在能量储存过程中促进了Cuco2S4电极的游览反应。与原始Cuco2S4电极(373.4Fg(-1))和CuO / CO 3 O 4 / CNTS-3.2%电极相比,CuCo2S4 / CNTS-3.2%电极显示出557.5fg(-1)的比率显着增加的557.5 f g(-1)的电容。 356.5 f g(-1))以1 a g(-1)的电流密度。使用CUCO2S4 / CNTS-3.2%作为正极和作为负电极的活性炭组装不对称的超级电容器(ASC),其在功率密度为402.7W kg的功率密度显示出23.2phkg(-1)的能量密度(-1)。此外,在测试10,000个循环后,该ASC器件的残余特定电容保留了其原始值的85.7%,表明其优异的循环稳定性。 (c)2019 Elsevier Inc.保留所有权利。

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