DocumentCode :
1465991
Title :
Structural Evolution Mechanism of Early-Stage Nanocrystallization of Finemet Amorphous Ribbons
Author :
Wang, Y.X. ; Zhao, G.N. ; Yan, B. ; Wang, H.Y. ; Lu, W. ; Zhang, Y.
Author_Institution :
Shanghai Key Lab. of D&A for Metal-Functional Mater., Tongji Univ., Shanghai, China
Volume :
20
Issue :
3
fYear :
2010
fDate :
6/1/2010 12:00:00 AM
Firstpage :
1638
Lastpage :
1641
Abstract :
The Finemet alloy is used to make transformers for its excellent soft magnetic property. In order to study its distinctive character, it is essential to clarify the structural evolution mechanism especially in early nanocrystallization. The Fe73.5Si13.5B9Nb3Cu1 amorphous ribbons were prepared by single-roller melt-spinning process under argon atmosphere, and then annealed at 350??C, 380??C and 400??C for 10 mins respectively. We conduct the X-ray photoelectron spectrum (XPS) and the atom force microscope (AFM) to investigate the structural evolution mechanism in early nanocrystallization of Finemet. The X-ray photoelectron spectrum present the Cu atoms enrich in the surface and the Nb atoms redistribute to the iron-rich layer following with the increasing annealing temperature. The atomic force micrographs for the annealed specimens present a significant increase in the amount of the clusters and a dramatic drop in their average size. The structure evolution as observed is subjected to the atomic redistribution, which is crucial to the formation of the Cu-enriched clusters. In this paper, we discuss the behavior of different elements and elaborate the transformation of microstructure during the process of atomic migration.
Keywords :
X-ray photoelectron spectra; amorphous state; annealing; atomic force microscopy; boron alloys; copper alloys; crystal microstructure; crystallisation; iron alloys; melt spinning; nanofabrication; nanostructured materials; niobium alloys; silicon alloys; soft magnetic materials; AFM; Cu-enriched clusters; Fe73.5Si13.5B9Nb3Cu; Finemet alloy; Finemet amorphous ribbons; X-ray photoelectron spectrum; XPS; annealing temperature; argon atmosphere; atom force microscope; atomic force micrographs; atomic migration; atomic redistribution; early-stage nanocrystallization; microstructure; single-roller melt-spinning process; soft magnetic property; structural evolution mechanism; temperature 350 degC; temperature 380 degC; temperature 400 degC; time 10 min; transformers; Atom force microscope; Finemet; X-ray photoelectron spectrum; early nanocrystalline process;
fLanguage :
English
Journal_Title :
Applied Superconductivity, IEEE Transactions on
Publisher :
ieee
ISSN :
1051-8223
Type :
jour
DOI :
10.1109/TASC.2010.2044236
Filename :
5444900
Link To Document :
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