We present a study on atomic ordering within individual grains in granular L10-FePt thin films using transmission electron microscopy techniques. The film, used as a medium for heat assisted magnetic recording, consists of a single layer of FePt grains separated by non-magnetic grain boundaries and is grown on an MgO underlayer. Using convergent-beam techniques, diffraction patterns of individual grains are obtained for a large number of crystallites. The study found that although the majority of grains are ordered in the perpendicular direction, more than 15% of them are multi-variant, or of in-plane c-axis orientation, or disordered fcc. It was also found that these multi-variant and in-plane grains have always grown across MgO grain boundaries separating two or more MgO grains of the underlayer. The in-plane ordered portion within a multi-variant L10-FePt grain always lacks atomic coherence with the MgO directly underneath it, whereas, the perpendicularly ordered portion is always coherent with the underlying MgO grain. Since the existence of multi-variant and in-plane ordered grains are severely detrimental to high density data storage capability, the understanding of their formation mechanism obtained here should make a significant impact on the future development of hard disk drive technology.
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21 November 2014
Research Article|
November 20 2014
Quantitative transmission electron microscopy analysis of multi-variant grains in present L1-FePt based heat assisted magnetic recording media Available to Purchase
Hoan Ho;
Hoan Ho
a)
1Data Storage Systems Center,
Carnegie Mellon University
, Pittsburgh, Pennsylvania 15213, USA
2Department of Materials Science and Engineering,
Carnegie Mellon University
, Pittsburgh, Pennsylvania 15213, USA
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Jingxi Zhu;
Jingxi Zhu
b)
3SYSU-CMU Joint Institute of Engineering,
Sun Yat-Sen University
, Guangzhou, China
4
SYSU-CMU Shunde International Joint Research Institute
, Guangdong, China
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Andreas Kulovits;
Andreas Kulovits
2Department of Materials Science and Engineering,
Carnegie Mellon University
, Pittsburgh, Pennsylvania 15213, USA
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David E. Laughlin;
David E. Laughlin
1Data Storage Systems Center,
Carnegie Mellon University
, Pittsburgh, Pennsylvania 15213, USA
2Department of Materials Science and Engineering,
Carnegie Mellon University
, Pittsburgh, Pennsylvania 15213, USA
3SYSU-CMU Joint Institute of Engineering,
Sun Yat-Sen University
, Guangzhou, China
5Department of Electrical and Computer Engineering,
Carnegie Mellon University
, Pittsburgh, Pennsylvania 15213, USA
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Jian-Gang Zhu
Jian-Gang Zhu
1Data Storage Systems Center,
Carnegie Mellon University
, Pittsburgh, Pennsylvania 15213, USA
2Department of Materials Science and Engineering,
Carnegie Mellon University
, Pittsburgh, Pennsylvania 15213, USA
3SYSU-CMU Joint Institute of Engineering,
Sun Yat-Sen University
, Guangzhou, China
4
SYSU-CMU Shunde International Joint Research Institute
, Guangdong, China
5Department of Electrical and Computer Engineering,
Carnegie Mellon University
, Pittsburgh, Pennsylvania 15213, USA
Search for other works by this author on:
Hoan Ho
1,2,a)
Jingxi Zhu
3,4,b)
Andreas Kulovits
2
David E. Laughlin
1,2,3,5
Jian-Gang Zhu
1,2,3,4,5
1Data Storage Systems Center,
Carnegie Mellon University
, Pittsburgh, Pennsylvania 15213, USA
2Department of Materials Science and Engineering,
Carnegie Mellon University
, Pittsburgh, Pennsylvania 15213, USA
3SYSU-CMU Joint Institute of Engineering,
Sun Yat-Sen University
, Guangzhou, China
4
SYSU-CMU Shunde International Joint Research Institute
, Guangdong, China
5Department of Electrical and Computer Engineering,
Carnegie Mellon University
, Pittsburgh, Pennsylvania 15213, USA
a)
Electronic mail: [email protected]
b)
Electronic mail: [email protected]
J. Appl. Phys. 116, 193510 (2014)
Article history
Received:
September 15 2014
Accepted:
November 07 2014
Citation
Hoan Ho, Jingxi Zhu, Andreas Kulovits, David E. Laughlin, Jian-Gang Zhu; Quantitative transmission electron microscopy analysis of multi-variant grains in present L1-FePt based heat assisted magnetic recording media. J. Appl. Phys. 21 November 2014; 116 (19): 193510. https://doi.org/10.1063/1.4902082
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