Recent Developments in the Synthesis of Iron-Based Nanostructures by Laser Pyrolysis: Integrating Structural Analysis with the Experimental Method

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Abstract:

The paper briefly reviews some fundamental and applicative characteristics of the laser pyrolysis technique. Recent developments of this method for the synthesis of iron-based nanostructures are emphasized. By varying the precursor gas mixture, iron/carbon nanocomposites (core-shell structures) and gamma iron oxide nanopowders were obtained and characterized. Novel structural features of the synthesized titanium-doped nano iron oxides are described.

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Solid State Phenomena (Volumes 99-100)

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181-190

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July 2004

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[1] W.R. Cannon, S.C. Danforth, J.H. Flint, J.S. Haggerty and R.A. Marra: J. Am. Ceram. Soc. Vol. 65 (1982), p.324.

Google Scholar

[2] Y. Suyama, R.M. Marra, J.S. Haggerty and N.K. Bowen: Am. Ceram. Soc. Bulletin Vol. 64 (1985), p.1356.

Google Scholar

[3] Y. Kizaki, T. Kandori and Y. Fujitani: Jap. J. Appl. Phys. Vol. 24 (1985), p.800.

Google Scholar

[4] M. Cauchetier, O. Croix and M. Luce: Adv. Ceram. Mat. Vol. 3 (1988) p.548.

Google Scholar

[5] R. Fantoni, E. Borsella, S. Piccirillo, R. Ceccato and S. Enzo: J. Mat. Res. Vol. 5 (1990) p.143.

Google Scholar

[6] G.W. Rice and R.L. Woodin: J. Mater. Res, Vol. 4 (1989) p.1538.

Google Scholar

[7] M. Suzuki, Y. Maniette, Y. Nakata and T. Okutani: J. Am. Ceram. Soc. Vol. 80 (1993) p.1195.

Google Scholar

[8] Y. -L. Li, Y. Liang, K. -S. Xiao, F. Zheng and Z. -Q. Hu: Nanostructured Materials Vol. 5 (1995) p.1.

Google Scholar

[9] R. Alexandrescu, I. Morjan, E. Borsella, S. Botti, R. Fantoni, T.D. Makris, R. Giorgi and S. Enzo: J. Mater. Res. Vol. 6 (1991) p.2442.

DOI: 10.1557/jmr.1991.2442

Google Scholar

[10] F. Huisken, B. Kohn, R. Alexandrescu, S. Cojocaru, A. Crunteanu, C. Reynaud and G. Ledoux: Journal of Nanoparticles Research Vol. 1, (1999) p.293.

DOI: 10.1023/a:1010081206959

Google Scholar

[11] G. W. Flynn, C. S. Parmenter and A. M. Wodtke: J. Phys. Chem. Vol. 100 (1996) p.12817.

Google Scholar

[12] C. G. Granqvist and R. A. Buhrman: J. Appl. Phys. Vol. 47 (1976), p.2200.

Google Scholar

[13] M Ehbrecht., M. Faerber, F. Rohmund, V.V. Smirnov, O. Stelmach and F. Huisken:, Chem. Phys. Lett. Vol. 34 (1993), p.214.

Google Scholar

[14] I Voicu, X Armand, M. Cauchetier, N. Herlin and S. Bourcier: Chem. Phys. Lett. Vol. 256 (1996), p.261.

Google Scholar

[15] R. Alexandrescu, X. Armand, M. Cauchetier, N. Herlin, S. Petcu and I. Voicu: Carbon Vol. 36 (1998), p.1285.

DOI: 10.1016/s0008-6223(97)00222-4

Google Scholar

[16] R. Alexandrescu, E. Borsella, S. Botti, M.C. Cesile, R. Giorgi, S. Martelli and S. Turtu: J. Mater. Sci. Vol. 32 (1997), p.5629.

DOI: 10.1023/a:1018640911556

Google Scholar

[17] E. Borsella, R. Alexandrescu, S. Botti, M. Cesile, S. Martelli, R. Giorgi, S. Turtu and G. Zappa: J. Mater. Res. Vol. 12 (1997), p.774.

DOI: 10.1023/a:1018640911556

Google Scholar

[18] N. Herlin, I. Bohn, C. Reynaud, M. Cauchetier, A. Galvez and J.N. Rouzaud: Astron. Astrophys. Vol. 330 (1998), p.1127.

Google Scholar

[19] R. Alexandrescu, F. Huisken, G. Pugna, A. Crunteanu, S. Petcu, S. Cojocaru, R. Cireasa and I. Morjan: Appl. Phys. A. Vol. 65 (1997), p.207.

DOI: 10.1007/s003390050568

Google Scholar

[20] R. Alexandrescu, A. Crunteanu, R.E. Morjan, I. Morjan, F. Rohmund, L.K. L. Falk, G. Ledoux and F. Huisken: Infrared Phys. Technol. Vol. 44 (2003), p.43.

DOI: 10.1016/s1350-4495(02)00158-5

Google Scholar

[21] H. Hofmeister, F. Huisken, B. Kohn, R. Alexandrescu, S. Cojocaru, A. Crunteanu, I. Morjan and L. Diamandescu: Appl. Phys. A: Mater. Vol. 72 (2001), p.7.

DOI: 10.1007/s003390000599

Google Scholar

[22] X. Q. Zhao, F. Zheng, Y. Liang, Z.Q. Hu and LY.B. Xu: Mater. Lett. Vol. 21 (1994), p.285.

Google Scholar

[23] R. Alexandrescu, S. Cojocaru, A. Crunteanu, I. Morjan, I. Voicu, L. Diamandescu, F. Vasiliu, F. Huisken and B. Kohn: J. Phys. IV France Vol. 9 (1999), p. Pr8-537.

DOI: 10.1051/jp4:1999867

Google Scholar

[24] S. Martelli, A. Mancini, R. Giorgi, R. Alexandrescu, S. Cojocaru, A. Crunteanu, I. Voicu, M. Balu and I. Morjan: Appl. Surf. Sci. Vol. 353 (2000), p.154.

DOI: 10.1016/s0169-4332(99)00385-2

Google Scholar

[25] I. Morjan, R. Alexandrescu, I. Soare, F. Dumitrache, I. Sandu, I. Voicu, A. Crunteanu, E. Vasile, V. Ciupina and S. Martelli: Materials Science and Engineering C Vol. 1020 (2002), p.1.

DOI: 10.1016/s0928-4931(02)00269-2

Google Scholar

[26] X. -X. Bi, B. Ganguly, G.P. Huffmann, F.E. Huggins, M. Endo and P.C. Eklund: J. Mater. Res. Vol. 8 (1993), 1666.

Google Scholar

[27] F. Dumitrache, I. Morjan, R. Alexandrescu, B. Rand, V. Ciupina, G. Prodan, I. Voicu, I. Sandu, I. Soare, M. Ploscaru, C. Fleaca, R. Brydson and E. Vasile: Proceedings of SPIE Vol. 4977 (2003), p.670.

DOI: 10.1016/j.diamond.2003.10.022

Google Scholar

[28] F. Dumitrache, I. Morjan, R. Alexandrescu, R.E. Morjan, I. Voicu, I. Sandu, I. Soare, M. Ploscaru, C. Fleaca, V. Ciupina, G. Prodan, B. Rand, R. Brydson and A. Woodword: Diamond Related Materials (2003), in print.

DOI: 10.1016/j.diamond.2003.10.022

Google Scholar

[29] F. Dumitrache, B. David, N. Pizúrová, R. Alexandrescu, I. Morjan, O. Schneeweiss, I. Sandu, I. Soare, C. Fleaca, I. Voicu, V. Ciupina and B. Rand: Appl. Phys. A, (2003), to be published.

DOI: 10.1557/proc-872-j13.5

Google Scholar

[30] R. Alexandrescu: Appl. Surf. Sci. Vol. 106 (1996), p.28.

Google Scholar

[31] M.A. Duncan , T.G. Dietz and R.E. Smalley: J. Am. Chem. Soc. Vol. 103 (1981), p.5245.

Google Scholar

[32] L. Banares, T. Baumert, M. Bergt, B. Kiefer and G. Gerbe: J. Chem. Phys. Vol. 108 (1998), 5799.

Google Scholar

[33] K.E. Lewis, D.M. Golden, and G.P. Smith: J. Am. Chem. Soc. Vol. 106 (1984) p.3905.

Google Scholar

[34] T. Majima, Y. Matsumoto, and M. Takami, Journal of Photochemistry and Photobiology A: Chemistry Vol. 71 (1993), p.213.

Google Scholar

[35] X. Q. Zhao, F. Zheng, Y. Liang, Z.Q. Hu and Y.B. Xu : Mater. Lett. Vol. 21 (1994), p.285.

Google Scholar

[36] M. P, Morales, S. Veintemillas-Verdaguer and C.J. Serna : J. Mater. Res. Vol. 14 (1999), p.3066.

Google Scholar

[37] S. Veintemillas-Verdaguer, M.P. Morales and C.J. Serna : Mater. Lett. Vol. 35 (1998), p.2.

Google Scholar

[38] J. P. Hare, W. K. Hsu, H. W. Kroto, A. Lappas, K. Prassides, M. Terrones and R. M. Walton, Chem. Mater. Vol. 8 (1996), p.6.

Google Scholar

[39] W. Teunissen, F. M. F de Groot, J. Geus, O. Stephan, M. Tence and C. Colliex: J. Catalysis Vol. 204 (2001), p.169.

DOI: 10.1006/jcat.2001.3373

Google Scholar

[38] D.V. Szabo and D. Vollath: Adv. Mater. Vol. 11 (1999), p.1313.

Google Scholar

[39] F. Kokai, K. Takahashi, D. Kasuva, A. Nakayama, Y. Koga, M. Yudasaka and S. Iijima: Appl. Phys. A Vol. 77 (2003), p.69.

Google Scholar

[40] T. N. Moroz, E. N. Fedorova, S. M. Zhmoidk, A. G. Mironov, G. M. Rylov, A. L. Ragozin, A. D. Afanasyev and V. I. Zaikobsky: Chemistry for Sustainable Development Vol. 8 (2000), p.43.

Google Scholar

[41] O. Helgason, J. -M. Greneche, F. J. Berry, S. Morup and F. Mosselmans: J. Phys.: Condens. Matter Vol. 13 (2001), p.10785.

Google Scholar

[42] Z. -M. Wang, G. Yang, P. Biswas, W. Bresser and P. Boolchand: Powder Technology Vol. 114 (2001), p.197.

Google Scholar

[43] E. Murad and J. L. Bishop: American Mineralogist, Vol. 85 (2000), p.716.

Google Scholar

[44] W. Xu, D.R. Peacor, W. A. Dollase, R. Van Der Voo and R. Beaubouef: American Mineralogist Vol. 82 (1997), p.1101.

DOI: 10.2138/am-1997-11-1207

Google Scholar