DocumentCode :
1201130
Title :
Effect of crystallization on magnetic domain structure of thinned amorphous FeSiBCuNb ribbons
Author :
Zhou, S.X. ; Wang, Y.G. ; Ulvensøen, J.H. ; Høier, R.
Author_Institution :
Dept. of Phys., Trondheim Univ., Norway
Volume :
30
Issue :
6
fYear :
1994
fDate :
11/1/1994 12:00:00 AM
Firstpage :
4815
Lastpage :
4817
Abstract :
Crystallization and associated magnetic domain structure of Fe73.5Cu1Nb3Si13.5B9 amorphous ribbons have been investigated in in-situ annealing studies by electron transmission microscopy (TEM). Two stages of crystallization, which occurred at 380°C and 650°C, have been observed. The crystals associated with these temperatures are spherical nuclei with diameters less than 5 nm or clusters of ultrafine grains whose diameters are in the range of 15-20 nm respectively. The products formed at both stages are identified as the α-Fe(Si) phase. The magnetic domain structure of the as-quenched specimen is composed of large and simple domains. There is no evident change in domain structure. Upon the offset of the first crystallization. However, the second stage of crystallization leads to emergence of magnetic ripple. The origin of magnetic ripple is discussed within the framework of the random anisotropy model. From the analysis, effective uniaxial anisotropy <k> in the nanocrystalline alloy may be considered as local random anisotropy and is therefore likely to be the cause of the magnetic ripple. The estimated mean wavelength, λ, of the magnetic ripple is approximately 160 nm
Keywords :
amorphous magnetic materials; annealing; boron alloys; copper alloys; crystallisation; ferromagnetic materials; iron alloys; magnetic anisotropy; magnetic domains; magnetic particles; nanostructured materials; niobium alloys; silicon alloys; transmission electron microscopy; 380 C; 650 C; Fe73.5Cu1Nb3Si13.5B 9; TEM; amorphous ribbons; annealing; crystallization; magnetic domain structure; magnetic ripple; nanocrystalline alloy; random anisotropy model; Amorphous magnetic materials; Amorphous materials; Anisotropic magnetoresistance; Annealing; Crystallization; Iron; Magnetic anisotropy; Magnetic domains; Niobium; Perpendicular magnetic anisotropy;
fLanguage :
English
Journal_Title :
Magnetics, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9464
Type :
jour
DOI :
10.1109/20.334231
Filename :
334231
Link To Document :
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