DocumentCode :
3534176
Title :
SiO2 substrate having self organized nanoscale pores and Co dot array on it and coercivity enhancement in RE-TM film
Author :
Itoh, A. ; Tsukamoto, Arata ; Morisaki, K. ; Nanba, K. ; Sato, H. ; Itoh, Y. ; Ohtsuki, J. ; Ahn, C.-W.
Author_Institution :
Dept. of Electron. & Comp. Sci., Nihon Univ., Chiba, Japan
fYear :
2005
fDate :
4-8 April 2005
Firstpage :
921
Lastpage :
922
Abstract :
For high density magnetic recording, a perpendicular magnetized ultra fine grain medium having a large value of magnetic anisotropy is expected to be used, however non-uniformity in grain size becomes an origin of noise in reproduced signals. On the other hand, the continuous thin films such as rare earth transition metal (RE-TM) amorphous films used in magneto-optical recording have not such a noise source, however they do not show a sufficient wall coercivity for sustaining domains smaller than around 40 nm in mark length. One of the methods to solve these issues, we tried to fabricate RE-TM and Co thin films on the substrates which have self-assembled (SA) periodical nanometer-scale (nano) closed packed array of hollows (dents) at the surface. The array of dents have been produced from self organized 3-dimensional nano-pore (spherical cavity in nanometer scale) array in SiO2 thin films. The SA nano-dent array is capable to use as an under layer which is providing periodically arranged nucleation sites for crystal growth. Here, we report the results of fabrication of the SA 3-dimensional nanopore films, the coercivity enhancement in perpendicular magnetized TbFeCo amorphous films, and Co dot-array films fabricated on the substrates which have the SA nano-dent array at the surface.
Keywords :
amorphous magnetic materials; cobalt; cobalt alloys; coercive force; etching; grain size; interface magnetism; iron alloys; magnetic anisotropy; magnetic domain walls; magnetic recording; magnetic thin films; metallic thin films; nanoporous materials; self-assembly; silicon compounds; terbium alloys; Co-SiO2; TbFeCo; coercivity enhancement; crystal growth; dot array; nanopore film fabrication; nucleation site; perpendicular magnetized amorphous film; rare-earth transition-metal film; self-assembled hollow array; self-organized 3-dimensional nanopore array; self-organized nanoscale pores; thin film; underlayer; wall coercivity; Amorphous magnetic materials; Amorphous materials; Coercive force; Magnetic anisotropy; Magnetic noise; Magnetic recording; Magnetooptic recording; Perpendicular magnetic anisotropy; Perpendicular magnetic recording; Transistors;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Magnetics Conference, 2005. INTERMAG Asia 2005. Digests of the IEEE International
Print_ISBN :
0-7803-9009-1
Type :
conf
DOI :
10.1109/INTMAG.2005.1463889
Filename :
1463889
Link To Document :
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