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