首页> 外文期刊>Journal of solid state electrochemistry >Polyethylene glycol-assisted growth of Ni3S4 closely packed nanosheets on Ni-foam for enhanced supercapacitor device
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Polyethylene glycol-assisted growth of Ni3S4 closely packed nanosheets on Ni-foam for enhanced supercapacitor device

机译:Ni3S4的聚乙二醇辅助生长在Ni-泡沫上紧密包装纳米蛋白酶,用于增强超级电容器装置

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Rich redox peaks, high surface area, good surface wettability, fast ion passage channels, high rate capability and excellent stability are some of the essential features of an electrode for the superior electrochemical performance of a material for charge storage applications. In this work, we report the synthesis of Ni3S4 nanostructures on Ni-foam at various polyethylene glycol (PEG) concentrations, via the hydrothermal route, for supercapacitor applications. The Ni3S4 nanostructures prepared with 402 mM PEG concentration (PNS3) offers a high specific capacitance of 1458 F g(-1) at 2 A g(-1) and retain 37% of rate capacitance at a high and more realistic current density of 50 A g(-1). The PNS3 nanosheets exhibit outstanding stability over 2400 repeated cycling processes. The best capacitive performance of PNS3 is owing to its high surface area, closely packed nanosheet morphology, good surface wettability, uniform growth on the substrate and effective storage of hydroxyl ions in the mesopores. A symmetric supercapacitor device (PNS3//PNS3) delivers a large energy density of 34 W h kg(-1) with a power density of 350 W kg(-1). The electrochemical results and excellent symmetric device performance recommend Ni3S4 nanosheets (PNS3) to be a promising electrode material for supercapacitor applications.
机译:丰富的氧化还原峰,高表面积,良好的表面润湿性,快速离子通道,高速率能力和优异的稳定性是用于电荷储存应用材料的优异电化学性能的电极的一些基本特征。在这项工作中,我们通过水热途径向超级电容器应用报告在各种聚乙二醇(PEG)浓度下Ni3 S4纳米结构的合成。用402mm PEG浓度(PNS3)制备的Ni3 S4纳米结构在2Ag(-1)中提供1458f g(-1)的高比电容,并以高且更真实的电流密度保持37%的速率电容g(-1)。 PNS3纳米片具有超过2400多次循环过程的出色稳定性。 PNS3的最佳电容性能由于其高表面积,密集纳米片形态,表面润湿性良好,底物上均匀的生长,并有效地储存了中孔中的羟基离子。对称超电容器装置(PNS3 // PNS3)可提供34 W H kg(-1)的大能量密度,功率密度为350W kg(-1)。电化学结果和优异的对称设备性能推荐NI3S4纳米片(PNS3)是超级电容器应用的有希望的电极材料。

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