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首页> 外文期刊>Journal of Materials Chemistry, A. Materials for energy and sustainability >In situ preparation of N-ZnO/graphene nanocomposites: excellent candidate as a photocatalyst for enhanced solar hydrogen generation and high performance supercapacitor electrode
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In situ preparation of N-ZnO/graphene nanocomposites: excellent candidate as a photocatalyst for enhanced solar hydrogen generation and high performance supercapacitor electrode

机译:N-ZnO /石墨烯纳米复合材料的原位制备:作为光催化剂的优异候选物,可增强太阳能氢的产生和高性能超级电容器电极

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摘要

We have demonstrated a facile in situ wet chemical method to synthesize nanostructured nitrogen doped ZnO/Graphene (N-ZnO/GR) nanocomposites for the first time. Nitrogen doped ZnO over graphene (N-ZnO/GR) was studied using various concentrations of graphene. During the synthesis of N-ZnO/GR nanocomposites, in situ formation of graphene via GO reduction and formation of 4-9 nm N-ZnO have been demonstrated. The composite N-ZnO/GR absorbs in the visible region and this property is used for the photocatalytic reaction to transform hazardous H2S waste into eco-friendly hydrogen using solar light. The N-ZnO/GR nanocomposite with 0.3% graphene exhibits an enhanced photocatalytic stable hydrogen production rate i.e. similar to 5072 mu mol h(-1) under visible light irradiation. It is noteworthy that the N-ZnO/GR electrode exhibits a high specific capacitance of 555 F g(-1) and excellent cyclic performance with nearly 96.20% capacity retention after 2000 cycles at a current density of 10 A g(-1). These results indicate great potential applications of N-ZnO/GR in developing high hydrogen production and supercapacitors with high energy and power densities.
机译:我们首次展示了一种简便的原位湿化学方法,用于合成纳米结构的氮掺杂ZnO /石墨烯(N-ZnO / GR)纳米复合材料。使用各种浓度的石墨烯研究了氮掺杂在石墨烯上的ZnO(N-ZnO / GR)。在合成N-ZnO / GR纳米复合材料的过程中,已经证明了通过GO还原原位形成石墨烯和形成4-9 nm N-ZnO。 N-ZnO / GR复合材料在可见光区域吸收,该特性用于光催化反应,利用太阳光将有害的H2S废物转化为环保的氢。具有0.3%石墨烯的N-ZnO / GR纳米复合材料在可见光照射下具有增强的光催化稳定氢气产生速率,即类似于5072μmolh(-1)。值得注意的是,N-ZnO / GR电极在10 A g(-1)的电流密度下经过2000次循环后,显示出555 F g(-1)的高比电容和出色的循环性能,具有近96.20%的容量保持率。这些结果表明,N-ZnO / GR在开发高产氢量和具有高能量和功率密度的超级电容器方面具有巨大的潜在应用前景。

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