Projects of affiliated persons per year
Abstract
We optimize the recording medium for heat-assisted magnetic recording by using a high/low T c bilayer structure to reduce AC and DC noise. Compared to a former work, small Gilbert damping α = 0.02 is considered for the FePt-like hard magnetic material. Atomistic simulations are performed for a cylindrical recording grain with diameter d = 5 nm and height h = 8 nm. Different soft magnetic material compositions are tested, and the amount of hard and soft magnetic material is optimized. The results show that for a soft magnetic material with α SM = 0.1 and J i j, SM = 7.72 × 10 - 21 J / link, a composition with 50 % hard and 50 % soft magnetic material leads to the best results. Additionally, we analyze how much areal density can be improved by using the optimized bilayer structure compared to the pure hard magnetic recording material. It turns out that the optimized bilayer design allows an areal density that is 1 Tb / in. 2 higher than that of the pure hard magnetic material while obtaining the same signal-to-noise ratio.
| Original language | English |
|---|---|
| Article number | 123907 |
| Number of pages | 7 |
| Journal | Journal of Applied Physics |
| Volume | 126 |
| Issue number | 12 |
| DOIs | |
| Publication status | Published - 2019 |
Austrian Fields of Science 2012
- 103017 Magnetism
Keywords
- COUPLED COMPOSITE MEDIA
- EXCHANGE SPRING MEDIA
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Dive into the research topics of 'Improving the signal-to-noise ratio for heat-assisted magnetic recording by optimizing a high/low Tc bilayer structure'. Together they form a unique fingerprint.Projects
- 2 Finished
-
Beating the recording quadrilemma using Curie temperature modulated structures
Süss, D. (Project Lead) & Vranckx Herrera, S. E. (Admin)
1/01/16 → 31/12/18
Project: Research funding
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Thermally Controlled Magnetization Dynamics
Süss, D. (Project Lead), Vranckx Herrera, S. E. (Admin) & Praetorius, D. (Project Coordinator)
1/01/15 → 30/09/18
Project: Research funding
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