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Toward a comprehensive model of the synthesis of TiO2 particles from TiCl4

Abstract:
The combustion of TiCl4 to synthesize TiO2 nanoparticles is a multimillion tonne per year industrial process. The objective of this paper is to further the understanding of this process. Work toward three aspects of this multiscale problem is presented herein: gas-phase chemistry, surface chemistry, and the solution of a multidimensional population balance problem coupled to detailed chemical mechanisms. Presented here is the first thermodynamically consistent mechanism with physically realistic elementary-step rate constants by which TiCl4 is oxidized to form a stable Ti2OxCly species that lies on the path to formation of TiO2 nanoparticles. Second, progress toward a surface chemistry mechanism based on density functional theory (DFT) calculations is described. Third, the extension of a stochastic two-dimensional (surface-volume) population balance solver is presented. For the first time, the number and size of primary particles within each agglomerate particle in the population is tracked. The particle model, which incorporates inception, coagulation, growth, and sintering, is coupled to the new gas-phase kinetic model using operator splitting, and is used to simulate a heated furnace laboratory reactor and an industrial reactor. Using the primary particle information, transmission electron microscopy (TEM)-style images of the particles are generated, demonstrating the potential utility of first-principles modeling for the prediction of particle morphology in complex industrial systems. © 2007 American Chemical Society.

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Publisher copy:
10.1021/ie0706414

Authors


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Institution:
University of Oxford
Division:
MPLS
Department:
Chemistry
Role:
Author


Journal:
Industrial and Engineering Chemistry Research More from this journal
Volume:
46
Issue:
19
Pages:
6147-6156
Publication date:
2007-09-12
DOI:
EISSN:
1520-5045
ISSN:
0888-5885


Language:
English
Pubs id:
pubs:288530
UUID:
uuid:b8cc21f0-8b1a-4ce4-a74c-08c334a5d6d9
Local pid:
pubs:288530
Source identifiers:
288530
Deposit date:
2013-11-17

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