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Development of new generation of perovskite based noble metal/semiconductor photocatalysts for visible-light-driven hydrogen production.

机译:新一代基于钙钛矿的贵金属/半导体光催化剂的开发,用于可见光驱动的制氢。

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摘要

In recent decades, semiconductor photocatalysis has attracted a growing attention as a possible alternative to existing methods of hydrogen production, hydrocarbon conversion and organic compound oxidation. Many types of photocatalysts have been developed and tested for photocatalytic applications. However, most of them do not have notable activity in visible light region, which limits their practical applications. Development of photocatalysts, which can be activated by visible light provides a promising way forward to utilize both UV and visible portions of solar spectrum. In this thesis, two main methods to advance visible light driven photocatalysis, such as bandgap modification through doping and co-catalyst development, are investigated. The photocatalysts studied in this thesis included CdS and SrTiO3, which were extensively investigated and characterized. Rhodium doped strontium titanate was synthesized through different preparation methods. The synthesized samples have been investigated by various characterization techniques including XRD, TEM, STEM, XPS and UV-Vis spectroscopy. The effect of preparation conditions, such as doping concentration, calcination temperature and pH have been investigated and optimized. In addition, the photocatalytic activities for hydrogen production of the samples synthesized by different preparation methods were also studied. Among the preparation methods, polymerizable complex (PC) method was found to be the most effective synthesis method for SrTiO3: Rh. The samples prepared by PC method had higher photocatalytic activity as compared to that of samples synthesized by solid state reaction method and hydrothermal method. The reasons might be attributed to more effective doping and higher surface area. The results of this work suggest that PC method can also be applied to develop other perovskite materials for photocatalytic applications. Co-catalyst development for enhancement of photocatalytic hydrogen production is also described in this dissertation. Noble metal nanoparticles have been proved to be effective co-catalysts due to their unique physical and chemical properties. Au and Pt nanoparticles with different sizes were synthesized and deposited on CdS. Sub-nanometer Au and Pt were found to be promising co-catalysts for photocatalytic hydrogen production reaction. Specifically, sub-nm Au and sub-nm Pt nanoparticles were found to enhance the photocatalytic activity in hydrogen production of CdS by 35 and 15 times respectively. Other noble metal co-catalysts, such as Ru, Pd and Rh were also deposited on CdS and their photocatalytic activities were investigated. Additionally, a novel chamber for photocatalytic reactions was developed as a part of this dissertation. The reaction chamber has several unique features allowing different reactions and measurements. The reactor was proved to be suitable for future projects in photocatalysis such as photocatalytic CO2 conversion into hydrocarbons.
机译:在最近的几十年中,半导体光催化作为氢生产,碳氢化合物转化和有机化合物氧化的现有方法的一种可能替代方法已经引起了越来越多的关注。已经开发出许多类型的光催化剂并进行了光催化应用的测试。然而,它们中的大多数在可见光区域没有明显的活性,这限制了它们的实际应用。可以被可见光激活的光催化剂的开发为利用紫外线和太阳光谱的可见光提供了一种有前途的方法。本文研究了两种主要的促进可见光驱动的光催化方法,例如通过掺杂和助催化剂的开发来改变带隙。本文所研究的光催化剂包括CdS和SrTiO3,并对其进行了广泛的研究和表征。通过不同的制备方法合成了铑掺杂的钛酸锶。已通过各种表征技术(包括XRD,TEM,STEM,XPS和UV-Vis光谱)研究了合成的样品。研究和优化了制备条件的影响,例如掺杂浓度,煅烧温度和pH。此外,还研究了用不同制备方法合成的样品对产氢的光催化活性。在制备方法中,发现可聚合配合物(PC)方法是SrTiO3:Rh的最有效合成方法。与固相反应法和水热法合成的样品相比,PC法制备的样品具有更高的光催化活性。原因可能归因于更有效的掺杂和更大的表面积。这项工作的结果表明,PC方法也可以用于开发其他钙钛矿材料用于光催化应用。本文还描述了用于促进光催化制氢的助催化剂的开发。贵金属纳米粒子由于其独特的物理和化学特性,已被证明是有效的助催化剂。合成了具有不同尺寸的Au和Pt纳米颗粒,并将其沉积在CdS上。发现亚纳米金和铂是用于光催化制氢反应的有前途的助催化剂。具体而言,发现亚纳米金和亚纳米Pt纳米颗粒分别将CdS产氢中的光催化活性提高了35倍和15倍。其他贵金属助催化剂,如Ru,Pd和Rh也沉积在CdS上,并研究了它们的光催化活性。此外,作为本论文的一部分,开发了一种用于光催化反应的新型反应室。反应室具有几个独特的功能,可以进行不同的反应和测量。事实证明该反应器适用于光催化的未来项目,例如将光催化将CO2转化为碳氢化合物。

著录项

  • 作者

    Shen, Peichuan.;

  • 作者单位

    State University of New York at Stony Brook.;

  • 授予单位 State University of New York at Stony Brook.;
  • 学科 Engineering Materials Science.;Chemistry Inorganic.;Energy.
  • 学位 Ph.D.
  • 年度 2013
  • 页码 186 p.
  • 总页数 186
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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