DocumentCode
792346
Title
Developments and advances in thin layer particulate recording media
Author
Saitoh, Shinji ; Inaba, Hiroo ; Kashiwagi, Akira
Author_Institution
Res. & Dev. Center, Fuji Photo Film Co. Ltd., Kanagawa, Japan
Volume
31
Issue
6
fYear
1995
fDate
11/1/1995 12:00:00 AM
Firstpage
2859
Lastpage
2864
Abstract
Thin layer particulate recording media with a nonmagnetic under layer have been developed with double coating techniques, and their high density characteristics have been confirmed to be excellent. Such media produce a higher output than single and thick layer media because they have a smooth surface resulting from the under layer smoothness and less demagnetization resulting from the thinness of the magnetic layer. Such media produce a sharp and symmetrical isolated pulse waveform and show good overwrite characteristics for digital recording. The application of Ba-ferrite particles to thin layer media, in addition to metal particles, has clarified the differences between the characteristics of the two media. The output of thin layer metal media has been improved by up to +9 dB compared with the value for reference metal media, largely by improving the metal particles. Thin layer Ba-ferrite media are characterized by high output and low noise in the short wavelength region. Such performance will be expected for any particle orientation
Keywords
barium compounds; coercive force; demagnetisation; digital magnetic recording; ferrites; floppy discs; frequency response; magnetic multilayers; magnetic particles; magnetic recording noise; surface topography; Ba-ferrite particles; BaFe12O19; coercivity; demagnetization; digital recording; double coating techniques; floppy disks; frequency response curves; high density characteristics; high output; low noise; metal particles; nonmagnetic under layer; overwrite characteristics; particle orientation; particulate tapes; short wavelength region; smooth surface; symmetrical isolated pulse waveform; thin layer particulate recording media; Atomic layer deposition; Coatings; Coercive force; Digital recording; Discrete wavelet transforms; Disk recording; Electromagnetic measurements; Magnetic films; Magnetic recording; Shape;
fLanguage
English
Journal_Title
Magnetics, IEEE Transactions on
Publisher
ieee
ISSN
0018-9464
Type
jour
DOI
10.1109/20.490175
Filename
490175
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