Structural and Microwave Properties of Fe-Based Nanopowders via Mechanochemical Synthesis

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Abstract:

Structural and microwave properties of Fe-based nanoalloy powders, mechanochemically synthesized with a composition corresponding to Finemet (Fe73.5Si13.5B9Nb3Cu1), were investigated. The nanopowders, dominated by bcc-Fe (Si), consist of nanocrystallites and display high magnetization with low-coercivity. The microwave measurements show that the nanocomposites comprising the nanopowders possess high, broadband magnetic permeability.

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Solid State Phenomena (Volumes 124-126)

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851-854

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June 2007

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© 2007 Trans Tech Publications Ltd. All Rights Reserved

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[1] P. Toneguzzo, G. Viau, O. Acher, F. Fievet-Vincent and F. Fievet: Adv. Mater. Vol. 10 (1998), p.1032.

DOI: 10.1023/a:1004864927169

Google Scholar

[2] L. W. Deng, J. J. Jiang, S. C. Fan, Z. K. Feng, W. Y. Xie, X. C. Zhang and H. H. He: J. Magn. Magn. Mater. Vol. 264 (2003), p.50.

Google Scholar

[3] K. -I. Machida, J. R. Liu and M. Itoh: IEEE Trans. Magn. Vol. 41 (2005), p.3577.

Google Scholar

[4] R. Sanz, C. Luna, M. Hernandez-Velez, M. Vazquez, D. Lopez and C. Mijangos: Nanotechnology Vol. 16 (2005), p. S278.

Google Scholar

[5] P. H. Zhou, L. J. Deng, J. L. Xie, D. F. Liang, L. Chen and X. Q. Zhao: J. Magn. Magn. Mater. Vol. 292 (2005), p.325.

Google Scholar

[6] D. L. Zhang: Prog. Mater. Sci. Vol. 49 (2004), p.537.

Google Scholar

[7] C. Suryanarayana: Prog. Mater. Sci. Vol. 46 (2001), p.1.

Google Scholar

[8] Y. Yoshizawa, S. Oguma and K. Yamauchi: J. Appl. Phys. Vol. 64 (1988), p.6044.

Google Scholar

[9] T. Yanai, M. Yamasaki, K-i. Takahashi, M. Nakano, Y. Yoshizawa and H. Fukunaga: IEEE Trans. Magn. Vol. 40 (2004), p.2721.

Google Scholar

[10] G. Herzer: IEEE Trans. Magn. Vol. 25 (1989), p.3327.

Google Scholar

[11] X. Y. Zhang, J. W. Zhang, F. R. Xiao, J. H. Liu, K. Q. Zhang and Y. Z. Zheng: J. Mater. Res. Vol. 13 (1998), p.3241.

Google Scholar

[12] K. Hono, A. Inoue and T. Sakurai: Appl. Phys. Lett. Vol. 58 (1991), p.2180.

Google Scholar

[13] A. Lovas, L.F. Kiss and I. Balogh: J. Magn. Magn. Mater. Vol. 215/216 (2000), p.463.

Google Scholar

[14] K. Hono, D. H. Ping, M. Ohnuma and H. Onodera: Acta Mater. Vol. 47 (1999), p.997.

Google Scholar

[15] M. Ohnuma, D. H. Ping, T. Abe, H. Onodera, K. Hono and Y. Yoshizawa: J. Appl. Phys. Vol. 93 (2003), p.9186.

Google Scholar

[16] B. D. Cullity and S. R. Stock: Elements of X-ray Diffraction (Prentice Hall, New Jersey 2001).

Google Scholar

[17] I. V. Lyasotskii, N. B. Dyakonova, E. N. Vlasova, D. L. Dyakonov and M. Yu. Yazvitskii: Phys. Stat. Sol. (a) Vol. 203 (2006), p.259.

DOI: 10.1002/pssa.200521126

Google Scholar

[18] R. Nowosielski, J. J. Wysłocki, I. Wnuk and P. Gramatyk: J. Mater. Proc. Tech. in press.

Google Scholar

[19] E. van de Riet and F. Roozeboom: J. Appl. Phys. Vol. 81 (1997), p.350.

Google Scholar

[20] J. H. Wu: unpublished.

Google Scholar

[21] P. H. Zhou, L. J. Deng, J. L. Xie and Y. Q. Liu: Emerging Tech. -Nanoelec. (IEEE Conf. 2006).

Google Scholar

[22] J. H. Wu, L. B. Kong, C. R. Deng, S. Y. Lim and Y. Z. Chen: Int. Symp. Metastable, Mechanically Alloyed and Nanocrystalline Materials, Sendai, Japan, (2004).

Google Scholar

[23] Vazquez M, C. Luna, M. P. Morales, R. Sanz, C. J. Serna and C. Mijangos: Physica B: Condensed Matter Vol. 354 (2004), p.71.

DOI: 10.1016/j.physb.2004.09.027

Google Scholar

[24] G. Viau, F. Fievet-Vincent, F. Fievet, P. Toneguzzo, F. Ravel and O. Acher: J. Appl. Phys. Vol. 81 (1997), p.2749.

DOI: 10.1023/a:1004864927169

Google Scholar