DocumentCode :
81636
Title :
Characteristics of Synthesized Alumina Nanoparticles in a High-Pressure Radio Frequency Thermal Plasma Reactor
Author :
Ghorui, Srikumar ; Sahasrabudhe, Sameer ; Dhamale, Gayatri ; Kanhe, Nilesh ; Mathe, Vikash ; Bhoraskar, Sudha ; Das, Aruneema
Author_Institution :
Laser & Plasma Technol. Div., Bhabha Atomic Res. Centre, Mumbai, India
Volume :
42
Issue :
3
fYear :
2014
fDate :
Mar-14
Firstpage :
759
Lastpage :
766
Abstract :
Nanophase alumina is synthesized in an atmospheric pressure radio frequency (RF) plasma reactor through melting, evaporation, and vapor phase nucleation technique. A specially designed high-pressure RF plasma reactor fitted with an indigenously built RF plasma torch converts commercially available micrometer size alumina chunks into spherical nanophase alumina in a single step under ambient quenching conditions without use of any additional quenching gas. Obtained powder contains mixed phases of α and δ -alumina as revealed by X-ray diffraction studies. Transmission Electron Microscopy analyses exhibit very small particle size (peak at 15 nm), narrow size distribution (half width ~ 24 nm), zero agglomeration, and good crystallinity. Obtained particle characteristics together with the high purity owing to inherent electrode-less feature of the RF discharge are suitable for important technological applications including fabrication of high-power ceramic laser gain media like Y3Al5O12 (YAG) from composites of Al2O3 and Y2O3. Characteristics of the synthesized alumina are compared with that of nanoalumina synthesized in atmospheric arcs.
Keywords :
X-ray diffraction; ceramics; corundum; evaporation; high-pressure effects; melting; nanofabrication; nanoparticles; nucleation; particle size; quenching (thermal); transmission electron microscopy; α-alumina; δ-alumina; Al2O3; RF discharge; RF plasma torch; X-ray diffraction; agglomeration; atmospheric pressure radiofrequency plasma reactor; crystallinity; electrodeless feature; evaporation; high-power ceramic laser gain media; high-pressure radiofrequency thermal plasma reactor; melting; nanoparticles; particle size distribution; powder; quenching; spherical nanophase alumina; transmission electron microscopy; vapor phase nucleation technique; Cooling; Electron tubes; Nanoparticles; Plasma temperature; Powders; Radio frequency; Atmospheric-pressure plasmas; plasma devices; plasma materials processing; plasma sources;
fLanguage :
English
Journal_Title :
Plasma Science, IEEE Transactions on
Publisher :
ieee
ISSN :
0093-3813
Type :
jour
DOI :
10.1109/TPS.2014.2299871
Filename :
6728627
Link To Document :
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