DocumentCode :
1628283
Title :
Consolidation of Polycrystalline Yttria Powder By Millimeter-Wave Sintering for Laser Host Applications
Author :
Hornstein, M.K. ; Bruce, Ralph W. ; Fliflet, Arne W. ; Gold, Steven H. ; Kahn, Manfred ; Imam, M. Ashraf
Author_Institution :
Naval Res. Lab., Washington
fYear :
2007
Firstpage :
740
Lastpage :
740
Abstract :
Summary form only given. We report recent results of an investigation of millimeter-wave processing of yttria (Y2O3) for fabrication of transparent, high strength polycrystalline ceramic laser hosts for high energy laser (HEL) applications. The objective is to produce polycrystalline materials with optical quality comparable to that of a single crystal. It is difficult to produce yttria single crystals because of the phase transformation around 2000degC and the high melting temperature which is over 2400degC. While single crystals have high thermal conductivity and can operate at high powers, they are costly and limited in size and dopant concentration. Significant advantages of polycrystalline materials compared to single-crystals, are lower processing temperature, higher gain as a result of higher dopant concentrations, faster and less expensive fabrication, and the possibility of larger devices. Millimeter-wave processing has been proposed as an alternative method to solve the problems of both conventional vacuum sintering and low frequency microwave sintering, such as low heating rates, poor coupling, and unfavorable thermal gradients. A major component of the NRL millimeter-wave processing facility is a 20-kW, continuous-wave (CW), 83-GHz gyrotron oscillator (GYCOM, Ltd.). Translucent yttria has been successfully sintered with millimeter-wave beams with up to 99% theoretical density. A partially transparent yttria ceramic sample has also been achieved using the millimeter-wave sintering process. Several factors impact the quality of the sintered material including the presence of agglomerates, impurities, processing atmosphere, sintering aids, and thermal gradients. Efforts to improve the transparency are in progress.
Keywords :
ceramics; doping profiles; heat treatment; impurities; laser sintering; melting; powders; thermal conductivity; transparency; yttrium compounds; Y2O3; agglomerates; dopant concentration; gyrotron oscillator; heating rates; high-energy laser applications; high-strength polycrystalline ceramic laser hosts; impurities; melting; millimeter-wave beam sintering; phase transformation; polycrystalline yttria powder; poor coupling; processing atmosphere; thermal conductivity; thermal gradients; translucent yttria; transparent yttria ceramic sample; Ceramics; Conducting materials; Crystalline materials; Crystals; Laser applications; Laser sintering; Millimeter wave technology; Powders; Temperature; Thermal conductivity;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Plasma Science, 2007. ICOPS 2007. IEEE 34th International Conference on
Conference_Location :
Albuquerque, NM
ISSN :
0730-9244
Print_ISBN :
978-1-4244-0915-0
Type :
conf
DOI :
10.1109/PPPS.2007.4346046
Filename :
4346046
Link To Document :
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