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Magnetic Anisotropy of Sm(Co0.68Fe0.22Cu0.08Zr0.02)7.7 Ribbons Produced by Melt Spinning

Published online by Cambridge University Press:  31 January 2011

A-Ru Yan
Affiliation:
State Key Laboratory of Magnetism, Institute of Physics & Center of Condensed Matter Physics, Chinese Academy of Sciences, Beijing 100080, People's Republic of China
Zhi-Gang Sun
Affiliation:
State Key Laboratory of Magnetism, Institute of Physics & Center of Condensed Matter Physics, Chinese Academy of Sciences, Beijing 100080, People's Republic of China
Baoshan Han
Affiliation:
State Key Laboratory of Magnetism, Institute of Physics & Center of Condensed Matter Physics, Chinese Academy of Sciences, Beijing 100080, People's Republic of China
Bao-Gen Shen
Affiliation:
State Key Laboratory of Magnetism, Institute of Physics & Center of Condensed Matter Physics, Chinese Academy of Sciences, Beijing 100080, People's Republic of China
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Abstract

A high degree of texture was observed in melt-spun Sm(Co0.68Fe0.22Cu0.08Zr0.02)7.7 ribbons prepared by single-roller melt spinning at low wheel speed; their easy magnetization axis was parallel to the ribbon plane. Magnetization studies showed an obvious magnetic anisotropy and a 90% higher remanance in ribbons for the field parallel to the longitudinal direction (8.5 kGs) than that for the field parallel to the wide direction (4.4 kGs); this was attributed to a dendritic structure of needle-size grains (2–3 × 10–40 μm) with their long axis parallel to the ribbon plane. This texture allowed the development of a new process for producing anisotropic permanent magnets. The domain structure was studied by magnetic-force microscope. A highly ordered and strip-shaped magnetic domain structure was observed on the surface of the ribbons. This was due to the preference for tetragonal c-axis orientation parallel to the surface of melt-spun ribbons. We calculated the domain wall energy γ and critical single-domain particle size Dc of Sm(Co0.68Fe0.22Cu0.08Zr0.02)7.7 ribbons.

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Articles
Copyright
Copyright © Materials Research Society 2002

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References

Das, D.K., IEEE Trans. Magn. 5, 214 (1969).CrossRefGoogle Scholar
Westendorp, F.F. and Buschow, K.H.J., Solid State Commun. 7, 639 (1969).CrossRefGoogle Scholar
Foner, S., McNiff, E.J., Martin, D.L., and Benz, M.G., Appl. Phys. Lett. 20, 447 (1972).CrossRefGoogle Scholar
Zijlstra, H., J. Appl. Phys. 43, 4881 (1970).CrossRefGoogle Scholar
Chin, G.Y., Green, M.L., Nesbitt, E.A., Sherwood, R.C., and Wernick, J.H., IEEE Trans. Magn. 8, 29 (1972).CrossRefGoogle Scholar
Legrand, B.A., Chateigner, D., Bathie, R. Perrier de la, and Tournier, R., J. Magn. Magn. Mater. 173, 20 (1997).CrossRefGoogle Scholar
Dadon, D., Gefen, Y., and Dariel, M.P., IEEE Trans. Magn. 23, 3605 (1987).CrossRefGoogle Scholar
Paik, C.R., Okada, M., and Homma, M., IEEE Trans. Magn. 26, 1730 (1990).Google Scholar
Coehoorn, R. and Duchateau, J., Mater. Sci. Eng. 99, 131 (1988).Google Scholar
Kuji, T., R.C. O’Handley, and Grant, N.J., Appl. Phys. Lett. 54, 2487 (1989).Google Scholar
Yan, A., Zhang, W., Zhang, H., and Shen, B., J. Appl. Phys. (in press).Google Scholar
Fidler, J. and Skalicky, P., J. Magn. Magn. Mater. 27, 127 (1982).CrossRefGoogle Scholar
Liu, J.F., Zhang, Y., Dimitrov, D., and Hadjipanayis, G.C., J. Appl. Phys. 85, 2800 (1999).Google Scholar
Liu, J.F., Zhang, Y., Dimitrov, D., and Hadjipanayis, G.C., Appl. Phys. Lett. 73, 3007 (1998).Google Scholar
Stadelmaier, H.H., Mater. Lett., 2, 169 (1983).Google Scholar
Hadjipanayis, G., in Rare-Earth Iron Permanent Magnets, edited by Coey, J.M.D. (Clarendon, Oxford, United Kingdom, 1996).Google Scholar
Kumar, K., J. Appl. Phys. 63, R13 (1988).Google Scholar
Crabbe, M.W., Davies, H.A., and Buckley, R.A., IEEE Trans. Magn. 30, 696 (1994).Google Scholar
Bodenberger, R. and Hubert, A., Phys. Status. Solidi A 44, K7 (1977).CrossRefGoogle Scholar
Livingston, I.D., J. Appl. Phys. 43, 4756 (1972).CrossRefGoogle Scholar