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Mechanism insight of dual synergistic effects of plasmonic Pd-SrTiO_3 for enhanced solar energy photocatalysis

机译:等离子体PD-SRTIO_3对增强太阳能光电催化的双重协同效应的机制洞察

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摘要

This study presents the integration of UV-active semiconductor with plasmonic noble metal nanoparticles for enhanced solar energy photocatalysis. Nanocubes strontium titanate (SrTiO_3) is synthesized via a simple hydrothermal process. Then palladium (Pd) nanoparticles will be deposited onto the surface of SrTiO_3 by simple photochemical deposition route. The deposition of plasmonic Pd nanoparticles significantly increased the light absorption, especially in visible and near-infrared region and enhanced charge separation efficiency. The photocatalytic performance of Pd-deposited SrTiO_3 is assessed by photodegradation of bisphenol A (BPA) and 4-chlorophenol (4CP) under solar light. The results confirm that the existence of Pd nanoparticles in SrTiO_3 has improved the photocatalysis efficiency compared to pure SrTiO_3. The higher weight percentage of Pd loading achieved better photocatalytic performance compared to lower weight percentage of Pd loading. This improvement can be deduced from the dual localized surface plasmon resonance effects that led to higher photoresponse and generation of free electrons. Moreover, the existence of Pd nanoparticles further retards the recombination rate of electron and hole pairs. This leads to the excess presence of electrons that contributed to the formation of active radicals that enhanced the oxidation of BPA and 4CP. Thus, this study will provide a new mechanism insight and approach to modify visible and near-infrared light-driven photocatalysts in degrading various organic pollutants.
机译:该研究介绍了具有代级贵金属纳米粒子的UV-活性半导体的集成,用于增强太阳能光催化。纳米孔钛酸锶(SRTIO_3)通过简单的水热法合成。然后通过简单的光化学沉积途径将钯(Pd)纳米颗粒沉积到SRTIO_3的表面上。等离子体PD纳米颗粒的沉积显着增加了光吸收,特别是在可见光和近红外区域和增强的电荷分离效率。通过在太阳光下的双酚A(BPA)和4-氯苯酚(4CP)的光降解来评估PD沉积SRTIO_3的光催化性能。结果证实,与纯SRTIO_3相比,SRTIO_3中Pd纳米粒子的存在改善了光催化效率。与Pd载荷的较低重量百分比相比,Pd负载的重量率较高达到更好的光催化性能。可以从双局部表面等离子体共振效应推导出这种改进,其导致更高的光响应和自由电子产生。此外,Pd纳米颗粒的存在还延迟了电子和孔对的重组率。这导致了有助于形成增强BPA和4CP氧化的活性自由基的电子的过量存在。因此,本研究将提供一种新的机制洞察力和方法来修改可见和近红外光触发光催化剂,以降解各种有机污染物。

著录项

  • 来源
    《Applied Physics》 |2020年第7期|550.1-550.10|共10页
  • 作者单位

    Department of Environmental Engineering Faculty of Engineering and Green Technology Universiti Tunku Abdul Rahman Jalan Universiti Bandar Barat 31900 Kampar Perak Malaysia;

    Department of Environmental Engineering Faculty of Engineering and Green Technology Universiti Tunku Abdul Rahman Jalan Universiti Bandar Barat 31900 Kampar Perak Malaysia;

    Department of Chemical Engineering Lee Kong Chian Faculty of Engineering and Science Universiti Tunku Abdul Rahman Jalan Sungai Long Bandar Sungai Long 43000 Kajang Selangor Malaysia;

    School of Chemical Sciences Universiti Sains Malaysia 11800 Penang Malaysia;

    Department of Environmental Engineering Faculty of Engineering and Green Technology Universiti Tunku Abdul Rahman Jalan Universiti Bandar Barat 31900 Kampar Perak Malaysia;

    Environmental Nanotechnology Laboratory Department of Environmental Science and Engineering Indian Institute of Technology (ISM) Dhanbad Dhanbad Jharkhand 826004 India;

    Department of Hydraulic Engineering College of Civil Engineering Tongji University 1239 Siping Road Shanghai 200092 China;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Palladium; SrTiO_3; Visible light; Near infrared light; Sunlight; Localized surface plasmon resonance;

    机译:钯;srtio_3;可见光;近红外光;阳光;局部表面等离子体共振;

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