DocumentCode
83603
Title
HAMR Media Design in Optical and Thermal Aspects
Author
Baoxi Xu ; Zhanhong Cen ; Jin Hong Goh ; Jianming Li ; Kaidong Ye ; Jing Zhang ; Hongzhi Yang ; Yeow Teck Toh ; Chenggen Quan
Author_Institution
Data Storage Inst., Agency for Sci. Technol. & Res. (A-STAR), Singapore, Singapore
Volume
49
Issue
6
fYear
2013
fDate
Jun-13
Firstpage
2559
Lastpage
2564
Abstract
In a heat-assisted magnetic recording (HAMR) system, the thermal performances of recording medium are very critical for recording density because the track density and bit density are dominated by thermal spot size in the cross-track direction and temperature gradient in the down-track direction. The optical intensity and its distribution generated by the near field optical transducer serve as a heat source to heat the medium. Therefore, the medium optical response to the transducer is also very important for the medium´s thermal response. In this paper, based on the structure required by the magnetic performance, the effects of the medium structures on its optical and thermal performances are studied. The results show that a thinner interlayer (MgO layer) is beneficial to the medium´s performance. However, the seed layer (NiTa layer) deteriorates the performance seriously. Small in-plane thermal conductivity (good isolation) of the granular recording layer is also very important for the thermal performance of the medium. However, the out-plane thermal conductivity is not very critical in certain ranges.
Keywords
magnesium compounds; nickel alloys; tantalum alloys; thermal conductivity; thermomagnetic recording; HAMR media design; MgO-NiTa; bit density; cross-track direction; down-track direction; granular recording layer; heat source; heat-assisted magnetic recording system; in-plane thermal conductivity; magnetic performance; medium optical response; medium structure effects; medium thermal performance; medium thermal response; near field optical transducer; optical intensity; optical performance; out-plane thermal conductivity; recording density; recording medium; seed layer; temperature gradient; thermal spot size; track density; Heat-assisted magnetic recording; magnetic media; surface plasmon; thermal property;
fLanguage
English
Journal_Title
Magnetics, IEEE Transactions on
Publisher
ieee
ISSN
0018-9464
Type
jour
DOI
10.1109/TMAG.2013.2257703
Filename
6522295
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