Silica is one of the most abundant elements on the planet, has flexible bonding properties and generally excellent stability. Because of these properties, silica has been a vital component in technologies ranging from ancient glassware to modern supercomputers. Silica is able to form a wide range of materials both alone and as a component of larger material frameworks. Porous silica based nanomaterials are rapidly growing in importance because of their many applications in a wide variety of fields. This thesis focuses on the synthesis of silica based porous nanomaterials: nanocrystalline zeolites, mesoporous silica nanoparticles, and iron oxide core/shell nanocomposites. The synthetic conditions of these materials were varied in order to maximize efficiency, minimize environmental impact, and produce high quality material with far reaching potential applications. The materials were characterized by physicochemical techniques including Transmission Electron Microscopy, Dynamic Light Scattering, Powder X-Ray Diffraction, Solid State NMR, and Nitrogen Adsorption Isotherms. The materials were evaluated and conditions were controlled to produce high yields of quality nanomaterials and hypothesize methods for further synthetic control. The products will be used in studies involving nanoparticle toxicity, environmental remediation, and drug delivery.
Dissertation
Synthesis of silica based porous nanomaterials
University of Iowa
Doctor of Philosophy (PhD), University of Iowa
Summer 2014
DOI: 10.17077/etd.nes46s6r
Free to read and download, Open Access
Abstract
Details
- Title: Subtitle
- Synthesis of silica based porous nanomaterials
- Creators
- Paul S. Mueller - University of Iowa
- Contributors
- Sarah C. Larsen (Advisor)Edward Gillan (Committee Member)Amanda Haes (Committee Member)Len MacGillivray (Committee Member)Eric Nuxoll (Committee Member)
- Resource Type
- Dissertation
- Degree Awarded
- Doctor of Philosophy (PhD), University of Iowa
- Degree in
- Chemistry
- Date degree season
- Summer 2014
- Publisher
- University of Iowa
- DOI
- 10.17077/etd.nes46s6r
- Number of pages
- xi, 90 pages
- Copyright
- Copyright 2014 Paul Steven Mueller
- Language
- English
- Description illustrations
- color illustrations
- Description bibliographic
- Includes bibliographical references (pages 80-90).
- Academic Unit
- Chemistry
- Record Identifier
- 9983776940802771
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