DocumentCode :
1331588
Title :
Magnetic Properties of Magnetic Nanowires With Ultra-Small Trap Sites Fabricated by Anodic Oxidation and Nanoindentation Using Scanning Probe Microscopy
Author :
Okuda, Masumi ; Miyamoto, Yutaka ; Kishida, Masako ; Hayashi, Neisei
Author_Institution :
Sci. & Technol. Res. Labs., NHK (Japan Broadcasting Corp.), Tokyo, Japan
Volume :
47
Issue :
10
fYear :
2011
Firstpage :
2525
Lastpage :
2527
Abstract :
We have focused on the magnetic memories using parallel-aligned nanowires without mechanical moving parts, in order to achieve the ultra-high transfer rate of more than 72 Gbps for future ultra-high definition TV. It is important for the storage devices, where the magnetic nanowires are utilized, that the trapping energy of the magnetic domains should be optimized precisely. In order to tune this energy finely, we have fabricated ultra-small notches less than 20 nm in the z-direction of [Co/Pd] nanowires with perpendicular magnetic anisotropy by the nano-scratch, anodic oxidation and nano-indentation method, instead of the conventional notches fabricated in-plane of nanowires. We have succeeded to entrap magnetic domain walls by these trap sites on the nanowire.
Keywords :
anodisation; cobalt alloys; magnetic domain walls; magnetic recording; magnetic storage; nanofabrication; nanoindentation; nanomagnetics; nanowires; palladium alloys; perpendicular magnetic anisotropy; scanning probe microscopy; Co-Pd; Co-Pd nanowire z-direction; SPM; anodic oxidation method; magnetic domain walls; magnetic memories; magnetic nanowires; magnetic properties; nanoindentation method; nanoscratch method; parallel-aligned nanowires; perpendicular magnetic anisotropy; scanning probe microscopy; storage devices; trapping energy; ultrahigh definition TV; ultrahigh transfer rate; ultrasmall notches; ultrasmall trap sites; Magnetic domain walls; Magnetic domains; Magnetic hysteresis; Magnetic resonance imaging; Magnetic separation; Magnetostatics; Nanowires; Anodic oxidation; magnetic domain trap site; magnetic domain wall motion; magnetic nanowire; nano-indentation;
fLanguage :
English
Journal_Title :
Magnetics, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9464
Type :
jour
DOI :
10.1109/TMAG.2011.2157319
Filename :
6028088
Link To Document :
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