Controlling nanostructure in thermal plasma processing: Moving from highly aggregated porous structure to spherical silica nanoparticles

被引:30
作者
Goortani, Behnam Mostajeran [1 ]
Proulx, Pierre [1 ]
Xue, Siwen [1 ]
Mendoza-Gonzalez, Norma Y. [1 ]
机构
[1] Univ Sherbrooke, Dept Genie Chim, Sherbrooke, PQ J1K 2R1, Canada
关键词
primary particles; aggregates; equivalent diameter; laser diffractometry; CFD modelling;
D O I
10.1016/j.powtec.2007.01.014
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
The synthesis of SiO2 nanoparticles in a radio frequency (RF) plasma reactor is studied. Scanning electron microscopy (SEM), nitrogen absorption (BET), and laser diffractometry techniques are used to determine the morphology, product size and aggregation level of the resulting nanopowder. Computational fluid dynamics (CFD) modelling employing Fluent 6.2.16 is used to better understand the flow and temperature fields inside the reactor and their effect on the nanoparticles. The theoretical and experimental results are later combined to describe the effects of the above mentioned parameters on the formation (nucleation and growth) of the nanoparticles by different mechanisms. It is demonstrated that the quench gas configuration and reactor geometry can now be designed to control the morphology and size of nanoparticles in these reactors. Various nanostructured products have been synthesised: i.e., highly. aggregated nanostructure, partially sintered natiospheres and spherical nanoparticles with very low levels of aggregation. These nanostructures have their primary particles sized between 10 and 200 nm, while the aggregate sizes can lie in the range of between hundreds of nanometers to several micrometers. The critical parameters that should be considered for the large-scale production process are finally identified. (c) 2007 Elsevier B.V All rights reserved.
引用
收藏
页码:22 / 32
页数:11
相关论文
共 31 条
[1]  
ALAN FR, 2005, PART 2005 C STANF UP
[2]   An aerosol method to synthesize supported metal catalyst nanoparticles [J].
Backman, U ;
Tapper, U ;
Jokiniemi, JK .
SYNTHETIC METALS, 2004, 142 (1-3) :169-176
[3]  
Baronnet JM, 1992, High Temp Chem Process, V1, P577
[4]   GROWTH-RATES FOR LIQUID-DROPS [J].
BARRETT, JC ;
CLEMENT, CF .
JOURNAL OF AEROSOL SCIENCE, 1988, 19 (02) :223-242
[5]   In flight treatment of metallurgical silicon powder by RF thermal plasma: elaboration of hydrogenated silicon deposit on a substrate [J].
Benmansour, M ;
Francke, E ;
Morvan, D ;
Amouroux, J ;
Ballutaud, D .
THIN SOLID FILMS, 2002, 403 :112-115
[6]  
Bohren C. F., 1983, ABSORPTION SCATTERIN, P83
[7]  
Boulos M. I., 1994, THERMAL PLASMAS FUND
[8]  
DAHNEKE B, 1983, SIMPLE KINETIC THEOR, P97
[9]   Modelling of the reactive synthesis of ultra-fine powders in a thermal plasma reactor [J].
Desilets, M ;
Bilodeau, JF ;
Proulx, P .
JOURNAL OF PHYSICS D-APPLIED PHYSICS, 1997, 30 (13) :1951-1960
[10]   Reactive thermal plasmas: ultrafine particle synthesis and coating deposition [J].
Fauchais, P ;
Vardelle, A ;
Denoirjean, A .
SURFACE & COATINGS TECHNOLOGY, 1997, 97 (1-3) :66-78