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Development of visible-light-active photocatalyst for hydrogen production and environmental application.

机译:开发用于氢生产和环境应用的可见光活性光催化剂。

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摘要

Semiconductor photocatalysis has been intensively studied in recent decades for a wide variety of application such as hydrogen production from water splitting and water and air treatment. The majority of photocatalysts are, however, wide band-gap semiconductors which are active only under UV irradiation. In order to effectively utilize visible solar radiation, this thesis investigates various types of visible-light active photocatalysts including metal ion-doped TiO2, nanocomposites of potassium niobate (KNbO 3) and CdS with Ni co-catalyst, and a mixed-phase CdS matrix interlinked with elemental Pt deposits.;Thirteen different metal ion-doped TiO2 nanoparticles are synthesized. I compare the effects of individual dopants on the resulting physicochemical properties and corresponding photocatalytic activities with respect to the catalysis of several reactions under visible-light irradiation. I found several metal ion-doped TiO2 nanoparticles such as Pt, Cr, and V had visible-light photocatalytic activities and the presence of rutile phase in these metal ion-doped TiO2 may affect their photoreactivities. In addition, visible-light photocatalytic activities of TiO2 are enhanced by co-doping with two metal ions.;Hybrid nanocomposite photocatalysts based on CdS nanoparticles (e.g., Ni(0)/NiO/ KNbO3/CdS, Zeolite/CdS, and nanocomposites of Q-sized cubic phase CdS and bulk-phase hexagonal CdS interlinked with elemental Pt deposits) are also studied. Different types of CdS nanocomposite photocatalysts are synthesized, optimized, and characterized using various analytical techniques. It is shown that these nanocomposites can enhance inherent photocatalytic activity of bulk-phase CdS for hydrogen production via effective charge separation of photogenerated electrons and holes in CdS under visible-light irradiation.;Additionally, a sub-pilot size hybrid electrochemical system with Bi-doped TiO2 anodes and SS cathodes for the degradation of organic pollutants and simultaneous hydrogen production has been developed to make the electrochemical system more economically viable. This system degrades a variety of organic pollutants and real wastewater with simultaneous production of hydrogen at the current efficiencies of 50∼70%. Furthermore, it is demonstrated that this electrochemical system can be driven by a photovoltaic (PV) cell.
机译:近几十年来,已经对半导体光催化进行了广泛的研究,其用途广泛,例如从水分解,水和空气处理中产生氢气。但是,大多数光催化剂是仅在紫外线照射下才具有活性的宽带隙半导体。为了有效利用可见光,本文研究了各种类型的可见光活性光催化剂,包括金属离子掺杂的TiO2,铌酸钾(KNbO 3)和CdS与Ni助催化剂的纳米复合材料以及混合相CdS基质与元素Pt沉积物相互连接。合成了13种不同的金属离子掺杂的TiO2纳米粒子。我比较了在可见光照射下,几种掺杂剂对几种反应的催化作用对所得的理化性质和相应的光催化活性的影响。我发现Pt,Cr和V等几种金属离子掺杂的TiO2纳米粒子具有可见光光催化活性,并且这些金属离子掺杂的TiO2中金红石相的存在可能会影响其光反应性。此外,通过与两种金属离子共掺杂增强了TiO2的可见光光催化活性。基于CdS纳米粒子(例如,Ni(0)/ NiO / KNbO3 / CdS,沸石/ CdS和沸石的纳米复合物)的混合纳米复合光催化剂还研究了与元素Pt沉积物相连接的Q尺寸立方相CdS和体相六方CdS。使用各种分析技术合成,优化和表征了不同类型的CdS纳米复合光催化剂。结果表明,这些纳米复合材料可以通过可见光照射下CdS中光生电子和空穴的有效电荷分离来增强本体相CdS产生氢的固有光催化活性。此外,具有Bi-用于降解有机污染物和同时制氢的掺杂TiO2阳极和SS阴极的开发已使电化学系统在经济上更具可行性。该系统可降解多种有机污染物和实际废水,同时以目前的50%至70%的效率产生氢气。此外,证明了该电化学系统可以由光伏(PV)电池驱动。

著录项

  • 作者

    Choi, Jina.;

  • 作者单位

    California Institute of Technology.;

  • 授予单位 California Institute of Technology.;
  • 学科 Engineering Environmental.
  • 学位 Ph.D.
  • 年度 2010
  • 页码 242 p.
  • 总页数 242
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:36:59

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