Kinetic study on the direct nitridation of silicon powders diluted with α-Si3N4 at normal pressure

Shao-wu Yin , Li Wang , Li-ge Tong , Fu-ming Yang , Yan-hui Li

International Journal of Minerals, Metallurgy, and Materials ›› 2013, Vol. 20 ›› Issue (5) : 493 -498.

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International Journal of Minerals, Metallurgy, and Materials ›› 2013, Vol. 20 ›› Issue (5) : 493 -498. DOI: 10.1007/s12613-013-0756-x
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Kinetic study on the direct nitridation of silicon powders diluted with α-Si3N4 at normal pressure

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Abstract

Silicon nitride (Si3N4) powders were prepared by the direct nitridation of silicon powders diluted with α-Si3N4 at normal pressure. Silicon powders of 2.2 μm in average diameter were used as the raw materials. The nitriding temperature was from 1623 to 1823 K, and the reaction time ranged from 0 to 20 min. The phase compositions and morphologies of the products were analyzed by X-ray diffraction and scanning electron microscopy, respectively. The effects of nitriding temperature and reaction time on the conversion rate of silicon were determined. Based on the shrinking core model as well as the relationship between the conversion rate of silicon and the reaction time at different temperatures, a simple model was derived to describe the reaction between silicon and nitrogen. The model revealed an asymptotic exponential trend of the silicon conversion rate with time. Three kinetic parameters of silicon nitridation at atmospheric pressure were calculated, including the pre-exponential factor (2.27 cm·s−1) in the Arrhenius equation, activation energy (114 kJ·mol−1), and effective diffusion coefficient (6.2×10−8 cm2·s−1). A formula was also derived to calculate the reaction rate constant.

Keywords

silicon nitride / powders / nitridation / reaction kinetics / activation energy

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Shao-wu Yin, Li Wang, Li-ge Tong, Fu-ming Yang, Yan-hui Li. Kinetic study on the direct nitridation of silicon powders diluted with α-Si3N4 at normal pressure. International Journal of Minerals, Metallurgy, and Materials, 2013, 20(5): 493-498 DOI:10.1007/s12613-013-0756-x

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References

[1]

Riley F L. Silicon nitride and related materials. J. Am. Ceram. Soc., 2000, 83(2): 245.

[2]

Bai L, Mao XD, Shen WP, Ge CC. Comparative study of β-Si3N4 powders prepared by SHS sintered by spark plasma sintering and hot pressing. J. Univ. Sci. Technol. Beijing, 2007, 14(3): 271.

[3]

Li Y H, Wang L, Yin SW, Yang FM, Wu P. Rapid crystallization process of amorphous silicon nitride. J. Am. Ceram. Soc., 2011, 94(12): 4169.

[4]

Koc R, Kaza S. Synthesis of α-Si3N4 from carbon coated silica by carbothermal reduction and nitridation. J. Eur. Ceram. Soc., 1998, 18(10): 1471.

[5]

Jennett T A, Harmsworth PD, Jones AG. Ultra fine crystalline silicon nitride from a continuous gas phase plasma route. Key Eng. Mater., 1994, 89–91, 47.

[6]

Crosbie G M, Smothers WJ. Preparation of silicon nitride powders. Proceedings of the 13th Automotive Materials Conference: Ceramic Engineering and Science Proceedings, 1986, 7(9/10): 1144.

[7]

Chen J, Yang J, Yin SW, Wang L. Numerical simulation on thermal process in an Si3N4-reaction furnace with CFX. J. Univ. Sci. Technol. Beijing, 2005, 27(6): 710.

[8]

Zakorzhevskii V V, Borovinskaya IP. Combustion synthesis of silicon nitride using ultrafine silicon powders. Powder Metall. Met. Ceram., 2009, 48(7–8): 375.

[9]

Varma A, Pigeon RG, Miller AE. Kinetics of α- and β-Si3N4 formation from oxide-free high-purity Si powder. J. Mater. Sci., 1991, 26(16): 4541.

[10]

Maalmi M, Varma A. Intrinsic nitridation kinetics of high-purity silicon powder. AIChE J., 1996, 42(12): 3477.

[11]

Chen Y X, Lin ZM, Li JT, Du JS, Yang SL. PTFE, an effective additive on the combustion synthesis of silicon nitride. J. Eur. Ceram. Soc., 2008, 28(1): 289.

[12]

Zhou H P. Introduction to the method of quantitative determination of phase content of Si3N4 by X-ray diffraction analysis. J. Chin. Ceram. Soc., 1980, 8(4): 414.

[13]

Li X L, Chen XL, Ji HM, Sun XH, Zhao LG. Phase analysis and thermal conductivity of in situ O′-sialon/β-Si3N4 composites. Int. J. Miner. Metall. Mater., 2012, 19(8): 757.

[14]

Jovanovic Z R. Kinetics of direct nitridation of pelletized silicon grains in a fluidized bed: experiment, mechanism and modelling. J. Mater. Sci., 1998, 33(9): 2339.

[15]

Yagi S, Kunii D. Studies on combustion of carbon particles in flames and fluidized beds. Proceedings of the 5th International Symposium on Combustion, 1955 231.

[16]

Pigeon R G, Varma A. Quantitative kinetic analysis of silicon nitridation. J. Mater. Sci., 1993, 28(11): 2999.

[17]

Luo K B, Luo MH, Li LP. Reaction Engineering Principle, 2005, Beijing, Science Press, 285.

[18]

Huang H N. Formation mechanism and kinetics of α- and β-Si3N4. Ceram. Stud. J., 1996, 11(1): 16.

[19]

Jennings H M. On reactions between silicon and nitrogen. J. Mater. Sci., 1983, 18(4): 951.

[20]

Yin S W, Wang L, Tong LG, Yang FM, Li YH. Kinetics analysis of direct nitridation of silicon powders at atmospheric pressure. Adv. Mater. Res., 2012, 562–564, 167.

[21]

Yang F M, Wang L, Yin SW, Li YH. Effect of the addition of α-Si3Ni4 on the direct nitridation of silicon powder at atmospheric pressure. Proceedings of the 2012 International Conference on Nanotechnology Technology and Advanced Materials, 2012 247.

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