首页> 外文期刊>Journal of nanotechnology >Highly Efficient Photocatalysis by Zinc Oxide-Reduced Graphene Oxide (ZnO-rGO) Composite Synthesized via One-Pot Room-Temperature Chemical Deposition Method
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Highly Efficient Photocatalysis by Zinc Oxide-Reduced Graphene Oxide (ZnO-rGO) Composite Synthesized via One-Pot Room-Temperature Chemical Deposition Method

机译:通过单盆室温化学沉积法合成氧化锌还原的石墨烯氧化物(ZnO-RGO)复合材料的高效光催化

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摘要

We synthesized zinc oxide-reduced graphene oxide (ZnO-rGO) composites using a one-pot chemical deposition method at room temperature. Zinc powder and graphene oxide (GO) of different mass ratios (1 : 1, 1 : 2, 1 : 5, 1 : 10, and 1 : 20 GO to Zn) were used as precursors in a mildly alkaline solution. UV-Vis spectroscopy was used to study the photocatalytic efficiency of the samples through the photodegradation of methylene blue (MB). UV-Vis measurements show the fast decomposition of methylene blue under UV light illumination with the best degradation efficiency of 97.7% within one hour, achieved with sample ZG2 (1 GO : 2 Zn mass ratio). The corresponding degradation rate was k(ZG2) = 0.1253 min(-1), which is at least 5.5 times better than other existing works using hydrothermal methods. We argue that the excellent photodegradation of MB by ZG2 is due to the efficient charge separation brought about by the electronic interaction of the rGO with the ZnO and the formation of a Zn-O-C bond, as supported by XRD and Raman spectroscopy measurements.
机译:在室温下,在室温下使用单盆化学沉积方法合成氧化锌还原的石墨烯氧化物(ZnO-RGO)复合材料。锌粉和石墨烯氧化物(GO)不同的质量比(1:1,1:2,1:5,1:10和1:20进入Zn)作为温和碱性溶液中的前体。使用UV-Vis光谱学用于研究样品的光催化效率通过亚甲基蓝(MB)的光降解。 UV-Vis测量显示UV光照在UV光照下的快速分解,最佳降解效率为97.7%在1小时内,通过样品ZG2(1 GO:2 Zn质量比)实现。相应的降解速率是K(Zg2)= 0.1253 min(-1),比使用水热方法的其他工件效果比其他工件效果至少为5.5倍。我们认为ZG2的MB的优异光降解是由于RGO与ZnO的电子相互作用带来的有效电荷分离,并且由XRD和拉曼光谱测量的支持和Zn-O-C键的形成。

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  • 来源
    《Journal of nanotechnology》 |2019年第1期|1895043.1-1895043.11|共11页
  • 作者单位

    Univ Philippines Baguio Coll Sci Dept Phys Sci Micro & Nano Innovat Lab Baguio 2600 Philippines;

    Univ Philippines Baguio Coll Sci Dept Phys Sci Micro & Nano Innovat Lab Baguio 2600 Philippines;

    Univ Philippines Baguio Coll Sci Dept Phys Sci Micro & Nano Innovat Lab Baguio 2600 Philippines;

    Univ Philippines Baguio Coll Sci Dept Phys Sci Micro & Nano Innovat Lab Baguio 2600 Philippines;

    Natl Inst Mat Sci Mat Anal Stn Tsukuba Ibaraki 3050047 Japan;

    Univ Philippines Baguio Coll Sci Dept Phys Sci Micro & Nano Innovat Lab Baguio 2600 Philippines;

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