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High-Visible-Light Photocatalytic Activity of ZnO–Au Nanocomposites Synthesized by a Controlled Hydrothermal Method

机译:受控水热法合成的ZnO-Au纳米复合材料的高可见光光催化活性

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摘要

Powdered Au-nanoparticle-modified ZnO (ZnO–Au) nanocomposites having high photocatalytic activity are synthesized via a simple, facile, and controlled method. Through hydrothermal reactions, ZnO nanorods are first grown and the rod surface is then decorated with Au nanoparticles, with the number of Au nanoparticles being adjustable by changing the concentration of tetrachloroauric acid (HAuCl_4) in the precursor hydrothermal solution. The ZnO nanorods have an average length of 2 μm and diameter of 300 nm, and the Au nanoparticles are nearly spherical sized between 5 and 10 nm. The ZnO–Au nanocomposites have a higher light absorption capacity and lower carrier recombination rate than the bare ZnO nanorods, which is attributed to the plasmonic sensitizing of Au nanoparticles and makes the synthesized ZnO–Au nanocomposites photocatalytically active. The photocatalytic activity of the ZnO–Au nanocomposites is investigated by degrading rhodamine B (RhB) under visible light illumination, demonstrating that RhB can be photocatalytically degraded more efficiently with the ZnO–Au nanocomposites than with the bare ZnO nanorods, with the rate constant increasing from 6.36× 10~(-4) min~(-1) for the bare ZnO nanorods to 1.19 × 10~(-2) min~(-1) for the ZnO–Au nanocomposites. The ZnO–Au nanocomposites also exhibit good photocatalytic stability and can be reused as photocatalysts.
机译:通过简单,容易和受控的方法合成具有高光催化活性的粉末状的Au-纳米颗粒改性ZnO(ZnO-Au)纳米复合材料。通过水热反应,首先生长ZnO纳米棒,然后用Au纳米颗粒装饰棒状物,通过改变前体水热溶液中的四氯硼酸(Haucl_4)的浓度来调节Au纳米颗粒的数量。 ZnO纳米棒的平均长度为2μm,直径为300nm,Au纳米颗粒几乎是球形的尺寸为5-10nm。 ZnO-Au纳米复合材料具有比裸ZnO纳米棒更高的光吸收能力和较低的载体重组率,这归因于Au纳米颗粒的等离子体致敏,并使合成的ZnO-Au纳米复合材料光催化活性。通过在可见光照射下降解罗丹明B(RHB)来研究ZnO-Au纳米复合材料的光催化活性,证明RHB可以与ZnO-Au纳米复合材料更有效地光催化降解,而不是裸ZnO纳米码,具有速率常数增加从6.36×10〜(-4)min〜(-1)用于裸ZnO纳米码至1.19×10〜(-2)min〜(-1)的ZnO-Au纳米复合材料。 ZnO-Au纳米复合材料也表现出良好的光催化稳定性,可作为光催化剂重复使用。

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  • 来源
    《Physica status solidi (a) Applications and materials science》 |2021年第16期|2100150.1-2100150.9|共9页
  • 作者单位

    Engineering Research Center of Ultra-Precision Optical Manufacturing (Shanghai) Department of Optical Science and Engineering School of Information Science and Technology Fudan University Shanghai 200433 China;

    Engineering Research Center of Ultra-Precision Optical Manufacturing (Shanghai) Department of Optical Science and Engineering School of Information Science and Technology Fudan University Shanghai 200433 China;

    Engineering Research Center of Ultra-Precision Optical Manufacturing (Shanghai) Department of Optical Science and Engineering School of Information Science and Technology Fudan University Shanghai 200433 China;

    Engineering Research Center of Ultra-Precision Optical Manufacturing (Shanghai) Department of Optical Science and Engineering School of Information Science and Technology Fudan University Shanghai 200433 China;

    Engineering Research Center of Ultra-Precision Optical Manufacturing (Shanghai) Department of Optical Science and Engineering School of Information Science and Technology Fudan University Shanghai 200433 China;

    Engineering Research Center of Ultra-Precision Optical Manufacturing (Shanghai) Department of Optical Science and Engineering School of Information Science and Technology Fudan University Shanghai 200433 China;

    Engineering Research Center of Ultra-Precision Optical Manufacturing (Shanghai) Department of Optical Science and Engineering School of Information Science and Technology Fudan University Shanghai 200433 China;

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

    hydrothermal reaction; photocatalysis; surface decoration; surface plasmon resonance; ZnO–Au nanocomposites;

    机译:水热反应;光催化;表面装饰;表面等离子体共振;ZnO-Au纳米复合材料;

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