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Plasmonic-enhanced photocatalysis reactions using gold nanostructured films

机译:使用金纳米结构薄膜的等离子体增强的光催化反应

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摘要

This work shows the enhancement of the visible photocatalytic activity of TiO(2)NPs film using the localized surface plasmonic resonance of Au nanostructures. We adopted a simple yet effective surface treatment to tune the size distribution, and plasmonic resonance spectrum of Au nanostructured films on glass substrates, by hot plate annealing in air at low temperatures. A hybrid photocatalytic film of TiO2:Au is utilized to catalyse a selective photodegradation reaction of Methylene Blue in solution. Irradiation at the plasmonic resonance wavelength of the Au nanostructures provides more effective photodegradation compared to broadband artificial sunlight of significantly higher intensity. This improvement is attributed to the active contribution of the plasmonic hot electrons injected into the TiO2. The broadband source initiates competing photoreactions in the photocatalyst, so that carrier transfer from the catalyst surface to the solution is less efficient. The proposed hybrid photocatalyst can be integrated with a variety of device architectures and designs, which makes it highly attractive for low-cost photocatalysis applications.
机译:该工作表明,使用Au纳米结构的局部表面等离子体共振来增强TiO(2)NPS膜的可见光催化活性。我们采用了一种简单而有效的表面处理,通过在低温下在空气中退火调节Au纳米结构薄膜的尺寸分布和等离子体共振谱。用于TiO2的杂化光催化膜:Au用于催化甲基蓝中的选择性光降解反应溶液中。与宽带人工阳光相比,Au纳米结构等离子体共振波长的照射提供了更高的强度的宽带人工阳光的光降解。这种改进归因于注入TiO 2中的等离子体热电子的主动贡献。宽带源引发光催化剂中的竞争光反应,从而从催化剂表面转移到溶液中的效率较低。所提出的杂交光催化剂可以与各种设备架构和设计集成,这使得对于低成本的光催化应用,这使其具有极具吸引力的光电催化应用。

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  • 来源
    《RSC Advances》 |2020年第38期|共7页
  • 作者单位

    Univ Technol Baghdad Appl Sci Dept Laser Sci &

    Technol Branch Baghdad Iraq;

    Al Nahrain Univ Laser &

    Optoelect Engn Dept Coll Engn Baghdad Iraq;

    Univ Technol Baghdad Nanotechnol &

    Adv Mat Res Ctr Baghdad Iraq;

    Univ Technol Baghdad Appl Sci Dept Laser Sci &

    Technol Branch Baghdad Iraq;

    Univ Technol Baghdad Appl Sci Dept Laser Sci &

    Technol Branch Baghdad Iraq;

    Nottingham Trent Univ Sch Sci &

    Technol Clifton Lane Nottingham NG11 8NS England;

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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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