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首页> 外文期刊>Chemical engineering journal >Metal-organic framework templated synthesis of porous NiCo2O4/ZnCo2O4/CO3O4 hollow polyhedral nanocages and their enhanced pseudocapacitive properties
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Metal-organic framework templated synthesis of porous NiCo2O4/ZnCo2O4/CO3O4 hollow polyhedral nanocages and their enhanced pseudocapacitive properties

机译:金属有机框架模板合成多孔镍氢镍锌/ ZnCo2O4 / Co3O4中空多面体纳米物质及其增强的假性涂膜特性

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摘要

A novel composite porous NiCo2O4/ZnCo2O4/Co3O4 hollow polyhedral nanocage is prepared by etching and the coprecipitation mechanism using the zeolitic imidazolate framework-67 as template. The use of the organic ligand in the template can prevent the agglomeration of the metal caused by high temperature calcination, which is beneficial to obtain the metal oxide nanocages composites with uniform particle size. The unique hollow nanocage structure of the composite material has a complex shell and shows a porous network-like structure which can provide more active sites, and promote the redox reaction of electrode material. At the current density of 1 A g(-1) and 10 A g(-1), the nanocage exhibits the specific capacitance of 1892.5 F.g(-1) and 1135 F.g(-1), respectively. After the 2000 cycles, the nanocage shows 66% of the capacitance retention rate and good cycle stability. Moreover the assembled NiCo2O4/ZnCo2O4/Co3O4//AC hybrid device can be reversibly cycled in a large potential range of 0-1.6 V and can deliver high energy density of 83.11 Wh kg(-1) as well as the maximum power density of 8006.67 W kg(-1). This study provides insight into the synthesis of other composites and more possibilities for constructing more desirable electrode materials.
机译:通过蚀刻和共沉淀机制使用沸石咪唑酯框架-67作为模板,通过蚀刻和共沉淀机制来制备新的复合多孔镍氢镍氢镍纳米证。在模板中使用有机配体可以防止由高温煅烧引起的金属的聚集,这有利于获得具有均匀粒度的金属氧化物纳米复合材料。复合材料的独特中空纳米结构具有复杂的壳,并且显示出多孔网络状结构,其可以提供更多的活性位点,并促进电极材料的氧化还原反应。在电流密度为1Ag(-1)和10Ag(-1),纳米分别表现出1892.5f.g(-1)和1135f.g(-1)的比电容。在2000次循环之后,纳米检测显示66%的电容保持率和良好的循环稳定性。此外,组装的NicO2O4 / ZnCo2O4 / Co3O4 // AC混合装置可以在0-1.6V的大电位范围内可逆地循环,并且可以提供83.11WHKG(-1)的高能量密度,以及8006.67的最大功率密度w kg(-1)。该研究提供了对其他复合材料的合成以及制造更理想的电极材料的更多可能性的洞察。

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