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基于硫磺源的自生长 3D NiS 纳米结构及其电化学超级电容器。

Sulphur Source-Inspired Self-Grown 3D Ni S Nanostructures and Their Electrochemical Supercapacitors.

机构信息

School of Materials Science and Engineering , Henan Polytechnic University , Jiaozuo 454000 , China.

出版信息

ACS Appl Mater Interfaces. 2019 Jan 30;11(4):4551-4559. doi: 10.1021/acsami.8b17689. Epub 2019 Jan 15.

Abstract

Sulphur source-inspired self-grown polycrystalline and mesoporous nickel sulfide (Ni S ) superstructures with vertically aligned nanomorphologies viz. rods, flakes, buds, and petals, synthesized at elevated temperatures and moderate pressures by a facile one-pot hydrothermal method on a three-dimensional Ni foam demonstrate remarkable areal specific capacitances of 7152, 4835, and 2160 F cm at current densities of 1, 2, and 5 mA cm, respectively, with a cycling stability of 94% for a battery-type electrochemical supercapacitor when used as an electrode material in a supercapacitor. The Ni S //BiO asymmetric supercapacitor assembly exhibits an energy density of 41 W h·kg at a power density of 1399 W kg for 1 A g and was used in a three-cell series combination to operate a "GFHIM" display panel (our research institute name, Global Frontier R & D Center for Hybrid Interface Materials) composed of nearly 50 differently colored light-emitting diodes with high intensity in 1 M KOH water-alkali electrolyte. The electrochemical supercapacitor results obtained for the Ni S superstructures because of a combination of catalytically active amorphous and high mobility polycrystalline are highly comparable to those reported previously for salt-mediated and self-grown Ni S structures and morphologies.

摘要

受硫磺源启发,通过简便的一步水热法在三维镍泡沫上,在高温和中等压力下合成了具有垂直排列纳米形态的多晶和介孔硫化镍 (NiS) 超结构,其形态为棒、薄片、芽和花瓣。作为超级电容器的电极材料,在电流密度为 1、2 和 5 mA cm 时,NiS //BiO 非对称超级电容器组件分别表现出 7152、4835 和 2160 F cm 的比面积电容,具有 94%的循环稳定性,用于电池型电化学超级电容器时,该组件表现出 41 W h·kg 的能量密度,在 1399 W kg 的功率密度下,电流密度为 1 A g。该组件用于由近 50 个不同颜色的发光二极管组成的“GFHIM”显示面板(我们研究所的名称,全球前沿研发中心混合界面材料)的三单元串联组合中,在 1 M KOH 水-碱电解质中具有高强度。由于非晶态和高迁移率多晶的协同作用,NiS 超结构的电化学超级电容器性能与之前报道的盐介导和自生长 NiS 结构和形态相当。

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