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首页> 外文期刊>Journal of Alloys and Compounds: An Interdisciplinary Journal of Materials Science and Solid-state Chemistry and Physics >Hierarchical NiCo2O4@ NiCoAl-layered double hydroxide core/shell nanoforest arrays as advanced electrodes for high-performance asymmetric supercapacitors
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Hierarchical NiCo2O4@ NiCoAl-layered double hydroxide core/shell nanoforest arrays as advanced electrodes for high-performance asymmetric supercapacitors

机译:分层Nico2O4 @ Nicoal层双氢氧化物芯/壳纳福特阵列作为高性能不对称超级电容器的先进电极

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摘要

A combination of hydrothermal synthesis and a step-by-step in situ structure fabrication process for growing a hierarchical core/shell structure of NiCo2O4@ NiCoAl-LDH onto nickel foam without binders and conductive agents is presented. For supercapacitor electrodes, the as-obtained NiCo2O4@ NiCoAl-LDH nanoforest displays an enhanced specific capacitance of 1814.24 F g(-1) at a current density of 1 A g(-1) and a cycling performance with a retention of 93% after 2000 cycles at 10 A g(-1). Moreover, an asymmetric supercapacitor based on NiCo2O4@ NiCoAl-LDH nanoforest electrode and activated carbon electrode achieves an excellent electrochemical property with the energy density of 74.64 Wh kg(-1) at the power density of 800 W kg(-1) and good cycling stability (retaining 86% after 2000 cycles). The improved electrochemical performance is attributed to the hierarchical core/shell structure and synergistic effect of active materials, which enhance the interfacial charge transmission and shorten the diffusion path of ions. These results demonstrate that the hierarchical core/shell NiCo2O4@ NiCoAl-LDH nanoforest arrays are promising for supercapacitor applications. (C) 2017 Elsevier B.V. All rights reserved.
机译:提出了水热合成的组合和逐步的原位结构制造方法,用于将NicO 2 O 4的镍氢/壳结构生长到没有粘合剂和导电剂的镍泡沫上的镍氢-LDH的分层核心/壳结构。对于超级电容器电极,AS获得的NicO2O4 //获得的NicoAl -LDH纳米集体在1Ag(-1)的电流密度下显示1814.24fg(-1)的增强特定电容,并在保留后的循环性能为93% 2000次循环为10 a g(-1)。此外,基于NiCO2O4的非对称超级电容器和活性炭电极的优异电化学性能,能量密度为74.64WH kg(-1)的优异电化学性能,在800W kg(-1)和良好的循环中稳定性(在2000次循环后保持86%)。改善的电化学性能归因于分层核心/壳结构和活性材料的协同作用,其增强界面电荷传递并缩短离子的扩散路径。这些结果表明,等级核心/壳NicO2O4 @ Nicoal-LDH纳米或最高阵列对超级电容器应用有望。 (c)2017年Elsevier B.V.保留所有权利。

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