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受生物启发的三维分级 Ni@NiCoS/NiS 电极超高负载的纳 米工程设计用于高能量密度超级电容器。

Bio-inspired nano-engineering of an ultrahigh loading 3D hierarchical Ni@NiCoS/NiS electrode for high energy density supercapacitors.

机构信息

Center for Advanced Materials Research, Zhongyuan University of Technology, Henan 450007, China.

出版信息

Nanoscale. 2019 Jan 23;11(4):1728-1736. doi: 10.1039/c8nr09754b.

DOI:10.1039/c8nr09754b
PMID:30623960
Abstract

Energy density has become a critical barrier in supercapacitor engineering and improvement of the electrode-loading is urgently demanded. However, there is conflict between the high loading and good electrochemical properties of supercapacitors. Herein, ultrahigh loading (10.33 mg·cm-2) 3D hierarchical NiCo2S4/Ni3S2 on Ni foam with outstanding performance is obtained via bio-inspired nano-engineering, which contains compact nanowire arrays catching urchin-like micro-particles. Using this high-loading material as a binder-free electrode achieves excellent areal capacitances with 16.90 F·cm-2 at 10.33 mA·cm-2 and 1.17 F·cm-2 at 5.17 mA·cm-2 in a three-electrode system and asymmetric supercapacitor device, respectively. The device also exhibits a high energy density of 4.69 W h m-2 (power density of 10.33 W·m-2) and an outstanding stability of 91.4% after 8000 cycles (20.66 mA·cm-2). Its excellent performance is attributed to the well-designed structure and composition: (i) a large contact area with the electrolyte raises the utilization efficiency of the active material, therefore guaranteeing the high capacitance of the active materials; (ii) the high electronic conductivity network constructed through NiCo2S4 and the short diffusion length boost its rate performance; (iii) the reserved space in the hierarchical structure could hold the volume change and enhance the cycling performance of the electrode in the charge/discharge cycles. Thus, this work not only provides a method for the construction of a high-loading and high-performance electrode for asymmetric supercapacitors, but could also shed light on the design of compact nano-materials for other energy storage systems.

摘要

能量密度已成为超级电容器工程中的一个关键障碍,迫切需要提高电极的负载量。然而,超级电容器的高负载量和良好的电化学性能之间存在冲突。在此,通过仿生纳米工程获得了具有出色性能的超高负载量(10.33mg·cm-2)三维分层 NiCo2S4/Ni3S2 在 Ni 泡沫上,其中包含密集的纳米线阵列捕捉到刺猬状的微颗粒。使用这种高负载量的材料作为无粘结剂电极,在三电极系统和非对称超级电容器装置中,分别在 10.33mA·cm-2 时实现了 16.90F·cm-2 的出色面积电容和在 5.17mA·cm-2 时实现了 1.17F·cm-2 的出色面积电容。该器件还表现出 4.69Wh·m-2 的高能量密度(功率密度为 10.33W·m-2)和 8000 次循环后 91.4%的出色稳定性(20.66mA·cm-2)。其优异的性能归因于精心设计的结构和组成:(i)与电解质的大接触面积提高了活性材料的利用率,从而保证了活性材料的高电容;(ii)通过 NiCo2S4 构建的高电子传导网络和短的扩散长度提高了其倍率性能;(iii)分层结构中的预留空间可以容纳体积变化,提高电极在充放电循环中的循环性能。因此,这项工作不仅为构建高负载量和高性能的非对称超级电容器电极提供了一种方法,而且还为其他储能系统中紧凑纳米材料的设计提供了启示。

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