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Received November 15, 2006
Accepted March 17, 2007
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Effect of reactant composition on the production of MoSi2 by self-propagating high-temperature synthesis
Department of Chemical Engineering, Konkuk University, Seoul 143-701, Korea
sanghkim@konkuk.ac.kr
Korean Journal of Chemical Engineering, November 2007, 24(6), 1095-1100(6), 10.1007/s11814-007-0127-2
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Abstract
The effect of reactant composition, particle size of silicon, density of powdered compacts, and reaction atmosphere on the characteristics of molybdenum disilicide produced from molybdenum and silicon powders by selfpropagating high-temperature synthesis, was studied in a pressurized reaction chamber at 1.5 bar. The atomic ratio of silicon to molybdenum (Si/Mo) was changed from 1.0 to 2.6 in order to investigate the effect of reactant composition on the characteristics of self-propagating high-temperature synthesis. Stable combustion was observed for the values of atomic ratios of silicon to molybdenum from 1.8 to 2.2 and SHS-produced material consisted of a uniform and singlephased MoSi2. In the meantime unstable combustion such as oscillatory, spinning, and surface combustion was detected for the values of atomic ratios of silicon to molybdenum less than 1.8 or larger than 2.2. SHS-produced material under unstable combustion includes the impurities of Mo5Si3, Mo3Si, unreacted Mo and Si resulting from the layered or reactedon-surface structures, which give lower degree of reaction and possibly poor electrical properties of heating element MoSi2. The value of criterion α suggested by Shkadinskii et al. to differentiate stable combustion from unstable one, is found to be 0.74 for producing molybdenum disilicide by self-propagating high-temperature synthesis. Stable combustion was detected for the values of α greater than 0.74 (α>0.74) to give the uniform and single-phased product while unstable combustion was observed for the values of α less than 0.74 (α<0.74) to result in a non-uniform and multiphase product. This critical value will help the industry to produce uniform and high-purity molybdenum disilicide by selfpropagating_x000D_
high-temperature synthesis processes.
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References
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Crider JF, Ceram. Eng. Sci. Proc., 3, 519 (1982)
McCauley JW, Ceram. Eng. Sci. Proc., 9, 503 (1988)
McCauley JW, Ceram. Eng. Sci. Proc., 11, 1137 (1990)
Munir ZA, Ceram. Bull., 67, 342 (1988)
Munir ZA, Anselmi-Tamburini V, Mater. Sci. Report, 3, 277 (1989)
Sarkisyan AR, Dulukhanyan SK, Borovinskaya IP, Merzhanov AG, Comb. Expl. Shock Waves, 14, 310 (1978)
Kumar S, Puszynski JA, Hlavacek V, Combustion characteristics of solid-solid systems: Experiments and modeling, in Combustion and Plasma Synthesis of High-Temperature Materials edited by Munir, Z. A. and Holt, J. B., VCH Publishers, pp. 273-280 (1990)
Angelescu N, Ceram. Int., 24, 73 (1998)
Shkadinskii KG, Khaikin BI, Merzhanov AG, Comb. Expl. Shock Waves, 7, 15 (1971)
Frankhouser WL, Advanced processing of ceramic compounds, 1st ed., Noyes Data Corp., Park Ridge, New Jersey (1987)
Yeo SC, A study on the self-propagating high-temperature synthesis of MoSi2 for high-temperature heating elements, M. S. Thesis, Konkuk University, Seoul, Korea (1991)
Barin I, Thermochemical data of pure substances, 1st ed., VCH Publishers, New York (1989)
Puszynski JA, Majorowski S, Hlavecek V, Ceram. Eng. Sci. Proc., 11, 1182 (1990)