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Synthesis of an ultra-thin Ni-membrane/ZnO-nanorod grass clump-like composite and its enhanced photocatalysis

机译:合成超薄Ni膜/ ZnO-Nanorod草丛状复合材料及其增强的光催化

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摘要

Ultra-thin Ni-membranes were prepared by a biomimetic method, and then the ZnO nanorods were in situ grown on the Ni-membranes via a hydrothermal method to form a Ni-membrane/ZnO-nanorod grass clump-like composite. The morphology and structure of the samples were characterized via X-ray diffraction, field-emission scanning electron microscopy, and energy-dispersive X-ray spectroscopy. Results showed that the ZnO nanorods growing on Ni-membranes form an array structure. The presence of the Ni-membranes not only promotes the separation efficiency of electron-hole pairs but also increases the photoabsorption efficiency. Photocatalytic degradation results show that the degradation efficiencies of rhodamine B (RhB) and methyl orange (MO) with the Ni-membrane/ZnO-nanorod composite are 1.78 and 1.48 times higher, respectively, than that with pure ZnO. .OH radicals and .O(2)(-)radicals were proved as the main reactive species in the catalytic degradation of MO.
机译:通过仿生方法制备超薄的Ni-膜,然后通过水热法在Ni-膜上原位生长ZnO纳米棒,以形成Ni膜/ ZnO-纳米棒状复合材料。 通过X射线衍射,现场 - 发射扫描电子显微镜和能量分散X射线光谱表征样品的形态和结构。 结果表明,在Ni膜上生长的ZnO纳米棒形成阵列结构。 Ni-膜的存在不仅促进了电子 - 空穴对的分离效率,而且增加了光吸收效率。 光催化降解结果表明,罗丹明(RHB)和甲基橙(Mo)与Ni膜/ ZnO-纳米棒复合物的降解效率分别比用纯ZnO为1.78和1.48倍。 被证明,在催化降解Mo的主要活性物质证明了.OH基团和.o(2)( - )基团。

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  • 来源
    《New Journal of Chemistry》 |2020年第27期|共7页
  • 作者单位

    Tongji Univ Shanghai Key Lab Chem Assessment &

    Sustainabil Sch Chem Sci &

    Engn Inst Adv Study Shanghai 200092 Peoples R China;

    Tongji Univ Shanghai Key Lab Chem Assessment &

    Sustainabil Sch Chem Sci &

    Engn Inst Adv Study Shanghai 200092 Peoples R China;

    Tongji Univ Shanghai Key Lab Chem Assessment &

    Sustainabil Sch Chem Sci &

    Engn Inst Adv Study Shanghai 200092 Peoples R China;

    Tongji Univ Shanghai Key Lab Chem Assessment &

    Sustainabil Sch Chem Sci &

    Engn Inst Adv Study Shanghai 200092 Peoples R China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 化学;
  • 关键词

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