Title :
Depth profile of transverse permeability spectrum in an annealed Co-based amorphous ribbon
Author :
Rheem, Y.W. ; Jin, L. ; Yoon, S.S. ; Kim, C.G. ; Kim, C.O.
Author_Institution :
Dept. of Mater. Eng., Chungnam Nat. Univ., Daejeon, South Korea
Abstract :
Amorphous Co66Fe4B15Si15 ribbons were annealed at a temperature of 380°C for 8 h in open air under a field of 3 Oe applied along the sample axis. The annealed samples were etched in hydrofluoric acid solution during various times from 10 s to 30 min in order to the different thickness of material, tetch, from ribbon surface. The static permeabilities due to domain wall motion μs,dw and magnetization rotation μs,rot are separated from the permeability extracted from the magnetoimpedance spectra. For the samples with thickness tetch less than 2 μm, both μs,dw and μs,rot are nearly zero at H=-3 Oe, while they are relatively large at H=+3 Oe. As the etched thickness increases over 2 μm, μs,dw and μs,rot at H=-3 Oe start to increases and eventually reach similar values to those at H=+3 Oe. The variations of μs,rot and μs,rot with tetch reflect that the sample annealed in open air is nearly saturated in the direction opposite to that of annealing field. This is due to antiferromagnetic coupling between the inner amorphous phase and the surface crystalline phase with thickness about 2 μm.
Keywords :
amorphous magnetic materials; boron alloys; cobalt alloys; etching; ferromagnetic materials; giant magnetoresistance; iron alloys; magnetic annealing; magnetic domain walls; magnetic permeability; magnetisation reversal; metallic glasses; silicon alloys; surface magnetism; 2 micron; 30 min; 380 C; 8 h; Co66Fe4B15Si15; amorphous Co66Fe4B15Si15 ribbons; annealed Co-based amorphous ribbon; annealed samples; antiferromagnetic coupling; depth profile; domain wall motion; etched surface; giant magnetoimpedance; hydrofluoric acid solution; inner amorphous phase; magnetization rotation; magnetoimpedance spectra; ribbon surface; static permeability; surface crystalline phase; transverse permeability spectrum; Amorphous magnetic materials; Amorphous materials; Annealing; Etching; Iron; Magnetic domain walls; Magnetic materials; Magnetization; Permeability; Temperature;
Journal_Title :
Magnetics, IEEE Transactions on
DOI :
10.1109/TMAG.2003.816018