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Novel preparation of nanostructured titanium dioxide photocatalytic particles, films, membranes, and devices for environmental applications.

机译:用于环境应用的纳米结构二氧化钛光催化颗粒,薄膜,膜和装置的新型制备方法。

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摘要

Precise manipulation of matter at the nanoscale will enhance our potential to synthesize materials with tailor-designed properties and functionalities for their environmental applications. This dissertation explores the development of innovative nanotechnological procedures for the preparation of highly efficient visible light-activated nanostructured TiO2 photocatalytic particles, films, membranes, and devices for environmental applications.; Nanocrystalline TiO2 particles and immobilized films and membranes with mesoporous inorganic network were prepared via a sol-gel method modified with surfactants as pore-directing agents. Not only did we manipulate the physicochemical properties of TiO2 such as crystallographic structure, particle size, and defect structure but also tailor-design its structural properties such as surface area, pore volume, and pore size distribution. Asymmetric mesoporous multilayer TiO2 photocatalytic membranes exhibiting hierarchical changes in pore diameter and materials porosity were also fabricated. These TiO2 films and membranes inherently possessed multiple and simultaneous functions including photocatalytic decomposition of organic pollutants, inactivation of pathogenic microorganisms, physical separation of contaminants, and anti-biofouling action.; In addition, for the design of solar-driven treatment technologies, highly efficient visible light-activated TiO2 photocatalysts with mesoporous structure and narrowed band gap energy were synthesized by introducing nitrogen-containing surfactant as a pore templating material as well as a nitrogen dopant in the sol-gel method of TiO2. For the development of highly sensitive and stable electrochemical sensors to detect a neurotransmitter, catechol, sonogel carbon electrodes were modified with the nanostructured TiO2 acting as an adsorbent for catechol and a redox mediator for electron transfer.; We also elucidated the formation of nanocrystalline TiO2 particles at ambient synthesis conditions via sol-gel method employing water immiscible room temperature ionic liquid as reaction medium and modified with surfactant as pore template. Detail information on the preparative method, synthesis route and mechanism, crystallographic and structural properties, and photocatalytic activity of the nanocrystalline TiO2 particles with thermal stability was investigated.; From a scientific point of view, this study will provide new nanotechnological and materials chemistry procedures to synthesize highly efficient photocatalytic TiO2 particles, films, and membranes that can be used for the treatment and disinfection of water and wastewater under even visible light irradiation, and highly sensitive TiO2-based devices for the development of new type of sensors.
机译:在纳米级上对物质进行精确的处理将增强我们合成具有量身定制的特性和功能的材料以用于其环境应用的潜力。本论文探索了创新的纳米技术程序的发展,以制备用于环境应用的高效可见光活化的纳米结构的TiO2光催化颗粒,薄膜,膜和装置。通过表面活性剂作为孔导向剂改性的溶胶-凝胶法制备了纳米晶TiO2颗粒和具有中孔无机网络的固定膜和膜。我们不仅操纵了TiO2的物理化学性质,如晶体结构,粒度和缺陷结构,而且还量身设计了其结构性质,如表面积,孔体积和孔径分布。还制备了不对称的介孔多层TiO2光催化膜,该膜表现出孔径和材料孔隙率的分级变化。这些TiO2薄膜和膜固有地具有多种同时功能,包括有机污染物的光催化分解,病原微生物的失活,污染物的物理分离和抗生物污垢作用。此外,在太阳能驱动处理技术的设计中,通过将含氮表面活性剂作为孔模板材料以及氮掺杂剂引入,合成了具有介孔结构和窄带隙能的高效可见光活化的TiO2光催化剂。 TiO2的溶胶-凝胶法。为了开发检测神经递质的高灵敏,稳定的电化学传感器,儿茶酚,声凝胶凝胶电极被纳米结构的TiO2用作儿茶酚的吸附剂和氧化还原介体进行电子转移。我们还阐明了在室温合成条件下通过溶胶-凝胶法以水不混溶的室温离子液体作为反应介质并用表面活性剂作为孔模板进行改性的方法形成的纳米TiO2颗粒。研究了具有热稳定性的纳米TiO2颗粒的制备方法,合成路线和机理,晶体结构和结构以及光催化活性的详细信息。从科学的角度来看,这项研究将提供新的纳米技术和材料化学程序,以合成高效的光催化TiO2颗粒,膜和膜,这些颗粒,膜和膜可用于甚至在可见光照射下对水和废水进行处理和消毒。敏感的基于TiO2的设备,用于开发新型传感器。

著录项

  • 作者

    Choi, Hyeok.;

  • 作者单位

    University of Cincinnati.;

  • 授予单位 University of Cincinnati.;
  • 学科 Engineering Sanitary and Municipal.; Environmental Sciences.; Engineering Environmental.
  • 学位 Ph.D.
  • 年度 2007
  • 页码 249 p.
  • 总页数 249
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 建筑科学;环境科学基础理论;环境污染及其防治;
  • 关键词

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