DocumentCode :
69369
Title :
Noise Mitigation in Granular and Bit-Patterned Media for HAMR
Author :
Victora, R.H. ; Sumei Wang ; Pin-Wei Huang ; Ghoreyshi, Ali
Author_Institution :
Dept. of Electr. & Comput. Eng., Univ. of Minnesota, Minneapolis, MN, USA
Volume :
51
Issue :
4
fYear :
2015
fDate :
Apr-15
Firstpage :
1
Lastpage :
7
Abstract :
Feasibility of heat assisted magnetic recording for granular and bit-patterned media (BPM) is evaluated in the context of various noises. Using micromagnetic simulation of renormalized media cells, we predict that the jitter is only 0.58 nm at a head speed of 10 m/s for the bilayer structure of FeRh/FePt when the grain size is 3.2 nm, validating the possibility of 6 Tb/in2. We propose a new structure FePt/Cr/X/FePt that uses a Cr layer to produce an antiferromagnetic coupling that mimics the behavior of FeRh/FePt. We also confirmed the consistency of our renormalization approach for cell sizes from 1.0 to 1.5 nm. The temperature distribution is analyzed for BPM for areal densities of 2.2-5 Tb/in2. We have predicted the maximum tolerable on-track bit temperatures at different areal densities and filling factors and substantiate the feasibility of BPM at 5 Tb/in2 by observing successful and deterministic switching under a realistic temperature distribution.
Keywords :
antiferromagnetic materials; chromium; grain size; granular materials; iron alloys; jitter; magnetic recording noise; micromagnetics; platinum alloys; renormalisation; temperature distribution; thermomagnetic recording; FePt-Cr; FeRh-FePt bilayer structure; antiferromagnetic coupling; areal densities; bit-patterned media; cell sizes; deterministic switching; filling factors; grain size; granular media; head speed; heat assisted magnetic recording; jitter; maximum tolerable on-track bit temperatures; micromagnetic simulation; noise mitigation; renormalization approach; renormalized media cells; size 1 nm to 1.5 nm; size 3.2 nm; temperature distribution; Heat-assisted magnetic recording; Heating; Jitter; Magnetic heads; Media; Noise; Temperature distribution; Bit-patterned media (BPM); FePt; granular media; heat assisted magnetic recording (HAMR); noise;
fLanguage :
English
Journal_Title :
Magnetics, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9464
Type :
jour
DOI :
10.1109/TMAG.2014.2353660
Filename :
7109984
Link To Document :
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