Combustion Synthesis of Aluminum Nitride: A Review

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Abstract:

Aluminum nitride has been acknowledged as an important industrial material because of its unique combination of high thermal conductivity and high electrical resistivity. Although there have been several excellent reviews on the synthesis of aluminum nitride, little has been mentioned on the combustion synthesis of AlN. In this work, the combustion synthesis methods for synthesis of AlN are reviewed and classified according to the phases involved in the reaction, the types of reactants (and additives) used and the design principles for the synthesis processes. Problems critical to combustion synthesis of AlN to obtain products with high product yields and low impurity contents are summarized and discussed.

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[1] T.J. Mroz: Am. Ceram. Soc. Bull. Vol. 71 (1992), p.782.

Google Scholar

[2] G.A. Slack, R.A. Tanzilli, R.O. Pohl and J.W. Vandersande: J. Phys. Chem. Solids Vol. 48 (1987), p.641.

Google Scholar

[3] R. Bachelard and P. Joubert: Mat Sci Eng a-Struct Vol. 109 (1989), p.247.

Google Scholar

[4] L.M. Sheppard: Am. Ceram. Soc. Bull. Vol. 69 (1990), p.1801.

Google Scholar

[5] F.J.M. Haussonne: Mater. Manuf. Processes Vol. 10 (1995), p.717.

Google Scholar

[6] G. Selvaduray and L. Sheet: Mater. Sci. Technol. Vol. 9 (1993), p.463.

Google Scholar

[7] O. Serpek, U.K. Patent 13579. (1906).

Google Scholar

[8] H.T. N. Kuramoto, U.S. Patent 4, 618, 592. (1986).

Google Scholar

[9] Y.I. H. Yamashita, R. Oguma, T. Hayashi, M. Tamura, and H. Matsuo, Japen Patent 61-205606. (1986).

Google Scholar

[10] C. Lenie, U.S. Patent 3, 108, 887. (1963).

Google Scholar

[11] T. Okada, M. Toriyama and S. Kanzaki: J. Eur. Ceram. Soc. Vol. 20 (2000), p.783.

Google Scholar

[12] I. Kimura, K. Ichiya, M. Ishii, N. Hotta and T. Kitamura: J. Mater. Sci. Lett. Vol. 8 (1989), p.303.

Google Scholar

[13] A.W. Weimer, G.A. Cochran, G.A. Eisman, J.P. Henley, B.D. Hook, L.K. Mills, T.A. Guiton, A.K. Knudsen, N.R. Nicholas, J.E. Volmering and W.G. Moore: J. Am. Ceram. Soc. Vol. 77 (1994), p.3.

DOI: 10.1111/j.1151-2916.1994.tb06951.x

Google Scholar

[14] K.G. Nickel, R. Riedel and G. Petzow: J. Am. Ceram. Soc. Vol. 72 (1989), p.1804.

Google Scholar

[15] R. Riedel and K.U. Gaudl: J. Am. Ceram. Soc. Vol. 74 (1991), p.1331.

Google Scholar

[16] I. Kimura, N. Hotta, H. Nukui, N. Saito and S. Yasukawa: Nippon Seram Kyo Gak Vol. 96 (1988), p.206.

Google Scholar

[17] P.M. Drygurgh, U.S. Patent 4, 172, 754. (1979).

Google Scholar

[18] L. Maya: Advanced Ceramic Materials Vol. 1 (1986), p.150.

Google Scholar

[19] W.G.M. S.D. Dunmead, K.E. Howard, K.C. Morse, U.S. Patent 5, 649, 278. (1997).

Google Scholar

[20] S.L. Chung, W.L. Yu and C.N. Lin: J. Mater. Res. Vol. 14 (1999), p. (1928).

Google Scholar

[21] S.M. Bradshaw and J.L. Spicer: J. Am. Ceram. Soc. Vol. 82 (1999), p.2293.

Google Scholar

[22] For example: (1) Taiwan Nitride Material Inc., Taipei, ROC. Information on http: /www. twaln. com/. (2) SCIENTIFIC HOSPITAL SUPPLIES ESPAÑA, S.A. Barcelona, Spain.

Google Scholar

[23] J.D. Walton. JR. and N.E. Poulos: J. Am. Ceram. Soc. Vol. 42 (1959), p.40.

Google Scholar

[24] A.G. Merzhanov and I.P. Borovins: Dokl Akad Nauk Sssr+ Vol. 204 (1972), p.366.

Google Scholar

[25] I.P. Borovinskaya, A.G. Merzhanov, N.P. Novikov and A.K. Filonenko: Combust Explo Shock+ Vol. 10 (1974), p.2.

Google Scholar

[26] A.G. Merzhanov, A.K. Filonenk and I.P. Borovins: Dokl Akad Nauk Sssr+ Vol. 208 (1973), p.892.

Google Scholar

[27] A.G. Merzhanov, G.G. Karyuk, I.P. Borovinskaya, S.Y. Sharivker, E.I. Moshkovskii, V.K. Prokudina and E.G. Dyad'ko: Powder Metall. Met. Ceram. Vol. 20 (1981), p.709.

DOI: 10.1007/bf00791050

Google Scholar

[28] J.B. Holt and Z.A. Munir: J Mater Sci Vol. 21 (1986), p.251.

Google Scholar

[29] A.A. Zenin, A.G. Merzhanov and G.A. Nersisyan: Combust Explo Shock+ Vol. 17 (1981), p.63.

Google Scholar

[30] Z.A. Munir and J.B. Holt: J Mater Sci Vol. 22 (1987), p.710.

Google Scholar

[31] I.P. Borovinskaya and V.E. Loryan: Sov. Powder Metall. Met. Ceram. Vol. 191 (1979), p.851.

Google Scholar

[32] Y.M. Maksimov, M.K. Ziatdinov, A.G. Raskolenko and O.K. Lepakova: Combust Explo Shock+ Vol. 15 (1979), p.420.

DOI: 10.1007/bf00785085

Google Scholar

[33] A.R. Sarkisyan, S.K. Dolukhanyan and I.P. Borovinskaya: Sov. Powder Metall. Met. Ceram. Vol. 17 (1978), p.424.

DOI: 10.1007/bf00795793

Google Scholar

[34] K.A. Philpot, Z.A. Munir and J.B. Holt: J Mater Sci Vol. 22 (1987), p.159.

Google Scholar

[35] S.D. Dunmead, D.W. Readey, C.E. Semler and J.B. Holt: J. Am. Ceram. Soc. Vol. 72 (1989), p.2318.

Google Scholar

[36] W.C. Lee, C.L. Tu, C.Y. Weng and S.L. Chung: J. Mater. Res. Vol. 10 (1995), p.774.

Google Scholar

[37] K.X. Chen, C.C. Ge, J.T. Li and W.B. Cao: J. Mater. Res. Vol. 14 (1999), p. (1944).

Google Scholar

[38] R.C. Juang, C.J. Lee and C.C. Chen: Mat Sci Eng a-Struct Vol. 357 (2003), p.219.

Google Scholar

[39] H. Wang, D.O. Northwood, J. Han and S. Du: J. Mater. Sci. - Mater. Electron. Vol. 41 (2006), p.1697.

Google Scholar

[40] C.L. Yeh and E.W. Liu: J. Alloys Compd. Vol. 433 (2007), p.147.

Google Scholar

[41] K. -X. Chen, J. -T. Li, Y. -L. Xia and C. -c. Ge: Int. J. SHS Vol. 6 (1997), p.411.

Google Scholar

[42] J. Shin, D.H. Ahn, M.S. Shin and Y.S. Kim: J. Am. Ceram. Soc. Vol. 83 (2000), p.1021.

Google Scholar

[43] G.J. Jiang, H.R. Zhuang, J. Zhang, M.L. Ruan, W.L. Li, F.Y. Wu and B.L. Zhang: J Mater Sci Vol. 35 (2000), p.57.

Google Scholar

[44] G. Shim, J.S. Park and S.W. Cho: J. Mater. Res. Vol. 21 (2006), p.747.

Google Scholar

[45] T. Sakurai, O. Yamada and Y. Miyamoto: Mat Sci Eng a-Struct Vol. 416 (2006), p.40.

Google Scholar

[46] S. -L. Chung, C. -N. Lin and Z. -X. Lin, U.S. Patent 6, 482, 384B1. (2002).

Google Scholar

[47] C.N. Lin and S.L. Chung: J. Mater. Res. Vol. 16 (2001), p.3518.

Google Scholar

[48] V. Rosenband and A. Gany: J. Mater. Process. Technol. Vol. 147 (2004), p.197.

Google Scholar

[49] R.C. Juang and C.C. Chen: Mat Sci Eng a-Struct Vol. 458 (2007), p.210.

Google Scholar

[50] L. Rao and R.B. Kaner: Inorg. Chem. Vol. 33 (1994), p.3210.

Google Scholar

[51] T. Tsuchida, T. Kitagawa and M. Inagaki: J Mater Sci Vol. 32 (1997), p.5123.

Google Scholar

[52] S. Dunmead, J.B. Holt and D. Kingman, in: Combustion and Plasma synthesis of High-Temperature Materials, edited by Z. A. Munir and J. B. Holt, VCH Publishers(1990).

Google Scholar

[53] M. Costantino and C. Firpo: J. Mater. Res. Vol. 6 (1991), p.2397.

Google Scholar

[54] J.H. Peng and J. Binner: J. Mater. Sci. Lett. Vol. 21 (2002), p.247.

Google Scholar

[55] R.L. Axelbaum, J.I. Huertas, C.R. Lottes, S. Hariprasad and S.M.L. Sastry: Mater. Manuf. Processes Vol. 11 (1996), p.1043.

Google Scholar

[56] Z.A. Munir: Am. Ceram. Soc. Bull. Vol. 67 (1988), p.342.

Google Scholar

[57] Y. Miyamoto, M. Koizumi, H. Sakagami and H. Nakada, Japen Patent 63-274605. (1987).

Google Scholar

[58] C.N. Lin and S.L. Chung: J. Mater. Res. Vol. 16 (2001), p.2200.

Google Scholar

[59] C.N. Lin and S.L. Chung: J. Mater. Res. Vol. 19 (2004), p.3037.

Google Scholar

[60] C.Y. Hsieh and S.L. Chung: J. Appl. Polym. Sci. Vol. 102 (2006), p.4734.

Google Scholar

[61] S.L. Chung, C.Y. Hsieh and C.W. Chang: J. Mater. Res. Vol. 23 (2008), p.819.

Google Scholar