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Fast and Efficient Sun Light Photocatalytic Activity of Au_ZnO Core–Shell Nanoparticles Prepared by a One-Pot Synthesis

机译:一锅法合成Au_ZnO核壳纳米粒子的快速高效太阳光催化活性

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Gold nanostructures absorb visible light and show localized surface plasmon resonance bands in the visible region. Semiconducting ZnO nanostructures are excellent for ultraviolet detection, thanks to their wide band gap, large free exciton binding energy, and high electron mobility. Therefore, the coupling of gold and ZnO nanostructures represents the best-suited way to boost photodetection. With the above perspective, we report on the high photocatalytic activity of some Au_ZnO core–shell nanoparticles (NPs) recently prepared by a one-pot synthesis in which a [zinc citrate]? complex acted as the ZnO precursor, a reducing agent for Au3+, and a capping anion for the obtained Au NPs. The overall nanostructures proved to be Au(111) NPs surrounded by a thin layer of [zinc citrate]? that evolved to Au_ZnO core–shell nanostructures. Worthy of note, with this photocatalyst, sun light efficiently decomposes a standard methylene blue solution according to ISO 10678:2010. We rationalized photodetection, reaction rate, and quantum efficiency.
机译:金纳米结构吸收可见光并在可见光区域显示局部表面等离子体共振带。半导体ZnO纳米结构具有宽带隙,大的自由激子结合能和高电子迁移率,因此非常适合紫外线检测。因此,金和ZnO纳米结构的耦合代表了增强光电检测的最佳方法。基于以上观点,我们报道了最近通过一锅法合成的某些[Au_ZnO]核壳纳米粒子(NPs)的高光催化活性,其中[柠檬酸锌]?配合物充当ZnO前体,Au3 +的还原剂和获得的Au NP的封端阴离子。整个纳米结构被证明是被[柠檬酸锌]薄层包围的Au(111)NP。演变成Au_ZnO核壳纳米结构。值得注意的是,这种光催化剂可根据ISO 10678:2010有效分解标准的亚甲基蓝溶液。我们合理化了光电检测,反应速率和量子效率。

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