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多维 CoS 纳米片/NiO 纳米片结构的协同效应增强了非对称超级电容器的性能。

Enhanced performance of multi-dimensional CoS nanoflake/NiO nanosheet architecture with synergetic effect for asymmetric supercapacitor.

机构信息

School of Electronic and Electrical Engineering, Hubei Collaborative Innovation Center of Textile Industrial Chain Generic Technology, Wuhan Textile University, Wuhan 430200, People's Republic of China.

出版信息

Nanotechnology. 2018 Nov 9;29(45):455401. doi: 10.1088/1361-6528/aadd63. Epub 2018 Aug 29.

Abstract

Multi-dimensional nanomaterials possess a porous structure and plenty of active sites, so they have promising prospects in supercapacitor applications. As the typical pseudocapacitance materials, interlaced CoS nanoflakes and two-dimensional NiO nanosheets were assembled into multi-dimensional CoS/NiO architectures. The fabricated CoS/NiO nanostructures on nickel foam can directly serve as the supercapacitor electrodes. Such multi-dimensional CoS/NiO architectures exhibit the enhanced electrochemical performances in the light of the cyclic voltammetry curves and galvanostatic charging-discharging (GCD) tests. A multi-dimensional CoS/NiO electrode releases a high specific capacitance of 1620 F g at 1.0 A g, which is distinctly higher than those of pristine CoS and NiO electrodes. The CoS/NiO//nitrogen-doped carbon nanoarrays (NC) asymmetric supercapacitor (ASC) can operate stably at 1.6 V. The GCD curves of the ASC at diverse current densities within the voltage window of 0-1.6 V exhibit reasonable symmetry. The CoS/NiO//NC ASC shows great long-term cycling performance, it has 93.5% capacity retention after 3000 cycles. Electrochemical analyses and detailed material characterizations are performed to reveal the mechanism for the enhanced performance of capacitance.

摘要

多维纳米材料具有多孔结构和丰富的活性位点,因此在超级电容器应用中具有广阔的前景。交错的 CoS 纳米薄片和二维 NiO 纳米片作为典型的赝电容材料被组装成多维 CoS/NiO 结构。在泡沫镍上制备的 CoS/NiO 纳米结构可以直接用作超级电容器电极。根据循环伏安曲线和恒流充放电(GCD)测试,这种多维 CoS/NiO 结构表现出增强的电化学性能。一个多维 CoS/NiO 电极在 1.0 A g 下释放出高达 1620 F g 的比电容,明显高于原始的 CoS 和 NiO 电极。CoS/NiO//氮掺杂碳纳米阵列(NC)非对称超级电容器(ASC)可以在 1.6 V 下稳定运行。在 0-1.6 V 的电压窗口内,不同电流密度下的 ASC 的 GCD 曲线表现出合理的对称性。CoS/NiO//NC ASC 具有出色的长期循环性能,在 3000 次循环后具有 93.5%的容量保持率。进行了电化学分析和详细的材料特性研究,以揭示电容性能增强的机制。

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