Title :
Analysis of Relation Between Magnetic Cluster Size Distribution and Signal Quality for High-Density Recording
Author :
Hashimoto, Mitsuhiro ; Ito, Naoto ; Kashiwase, Hidekazu ; Ichihara, Takayuki ; Nakagawa, Hiroyuki ; Nakamoto, Kazuhiro
Author_Institution :
Central Res. Lab. Hitachi, Ltd., Odawara, Japan
fDate :
6/1/2010 12:00:00 AM
Abstract :
We examined the relationship between media cluster size distribution and signal quality to obtain a guideline for developing high-density recording media. Both spin-stand measurement and micromagnetics simulation were used. The cluster size distribution and signal-to-noise ratio (SNR) of various recording media were evaluated, and the relationship between the two was analyzed by multiple regression. The results demonstrate that the media SNR could be quantitatively estimated from the cluster size distribution (both average sizes and size deviations). Although reducing either the average size or the size deviation was effective for improving the SNR, the impact of reducing the average size was much larger. Moreover, the influence of the average size on the SNR increased as linear density increased due to transition percolation. We concluded that providing guidelines for developing each individual medium at the target recording density is a key step. For high-density recording, in particular, focusing on a small average cluster size is essential in developing media.
Keywords :
magnetic noise; magnetic recording noise; micromagnetics; perpendicular magnetic recording; regression analysis; high-density recording media; linear density; magnetic cluster size distribution; media cluster size distribution; micromagnetics simulation; multiple regression; perpendicular magnetic recording; signal quality; signal-to-noise ratio; target recording density; transition percolation; Grain size; Guidelines; Magnetic analysis; Magnetic heads; Magnetic noise; Magnetic recording; Micromagnetics; Perpendicular magnetic recording; Signal analysis; Size measurement; Capped perpendicular recording media; magnetic cluster size distribution; micromagnetics simulation; read-write performance; spin-stand measurement;
Journal_Title :
Magnetics, IEEE Transactions on
DOI :
10.1109/TMAG.2010.2042575