Atomic layer deposition of TiO2 films on particles in a fluidized bed reactor
โ Scribed by David M. King; Xinhua Liang; Yun Zhou; Casey S. Carney; Luis F. Hakim; Peng Li; Alan W. Weimer
- Publisher
- Elsevier Science
- Year
- 2008
- Tongue
- English
- Weight
- 793 KB
- Volume
- 183
- Category
- Article
- ISSN
- 0032-5910
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โฆ Synopsis
Atomic layer deposition (ALD) of controlled-thickness TiO 2 films was carried out on particle substrates in a fluidized bed reactor for the first time. Films were deposited on 550 nm SiO 2 spheres and 65 nm ZnO nanoparticles for enhanced optical properties. Nanoparticles were fluidized with the assistance of a magnetically-coupled stirring unit. The metalorganic precursor titanium tetraisopropoxide was used here followed by either H 2 O or H 2 O 2 to deposit TiO 2 at various substrate temperatures. Growth rates of 0.01 nm/cycle and 0.04 nm/cycle were achieved when using H 2 O and H 2 O 2 as the oxidizer, respectively. These conformal TiO 2 films were verified using HRTEM, ICP-AES, XPS and UV absorbance measurements. The specific surface area changed appropriately after the particle size increased by the deposition of films with a given density, which showed that primary particles were not agglomerated together due to the coating process. In situ mass spectrometry was used to monitor reaction progress throughout each ALD reaction cycle. Bulk quantities of powder were successfully functionalized by TiO 2 nanofilms without wasting excess precursor.
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A fluidized bed reactor (FBR) was designed and constructed for the delivery of reactive gases to particle surfaces to functionalize particles at large scale using atomic layer deposition (ALD). Nano-and micron-sized particles were effectively fluidized using an inert carrier gas assisted by mechanic
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