Yi-Hsiu Chen's research while affiliated with National Chung Hsing University and other places

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Publications (2)


MoC intermediate layer for FePt magnetic recording media
  • Article

May 2014

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34 Reads

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8 Citations

Journal of Applied Physics

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Qi-Shao Luo

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Po-Ran Chen

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Yi-Hsiu Chen

A (001) textured FePt film was deposited on MoC/CrRu/glass at a substrate temperature of 380 °C by using magnetron sputtering. The MoC conductive intermediate layer was used to resist the Cr diffusion up to high deposition temperatures and promotes the epitaxial growth of the (001) textured FePt film. The FePt film showed high perpendicular magnetization and the out-of-plane coercivity increased with MoC thickness. The FePt/MoC (5 nm)/CrRu film showed a square out-of-plane magnetic hysteresis loop with a coercivity of 6.0 kOe and a linear-like in-plane loop. A multi-functional MoC intermediate layer exhibited heteroepitaxial relation with FePt and CrRu and was capable of resisting the interlayer diffusion at high deposition temperatures.

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SEM images of (a) Fe/FePt film, (b) FeO x (7%)/Fe/FePt trilayer, (c) FeO x (7%)/Fe/FePt film annealed at 500°C, and (d) FeO x (7%)/Fe/FePt film annealed at 800°C.
In-plane and out-of-plane magnetic hysteresis loops of (a) FePt single layer, (b) Fe(6 nm)/FePt bilayer, and FeO x (P)/Fe/FePt films with different oxygen flow rationes; P = (c) 0.5%, (d) 1%, (e) 3%, and (f) 7%.
AFM images of (a) Fe/FePt film, (b) FeO x (7%)/Fe/FePt trilayer, (c) FeO x (7%)/Fe/FePt film annealed at 500°C, and (d) FeO x (7%)/Fe/FePt film annealed at 800°C.
In-plane and out-of-plane magnetic hysteresis loops of FeO x (P)/Fe/FePt trilayer further annealed at 500°C with P = (a) 1%, (b) 3%, and (c) 7% and 800°C with P = (d) 1%, (e) 3%, and (f) 7%.
In-plane and out-of-plane magnetic hysteresis loops of (a) FePt single layer, (b) Fe(6 nm)/FePt bilayer, and FeO x (P)/Fe/FePt films with different oxygen flow rationes; P = (c) 0.5%, (d) 1%, (e) 3%, and (f) 7%.

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Magnetic properties and microstructure of FeOx/Fe/FePt and FeOx/FePt films
  • Article
  • Full-text available

January 2013

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69 Reads

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3 Citations

Journal of Nanomaterials

The Fe(6 nm)/FePt film with perpendicular magnetization was deposited on the glass substrate. To study the oxygen diffusion effect on the coupling of Fe/FePt bilayer, the plasma oxidation with 0.5~7% oxygen flow ratio was performed during sputtered part of Fe layer and formed the FeOx(3 nm)/Fe(3 nm)/FePt trilayer. Two-step magnetic hysteresis loops were found in trilayer with oxygen flow ratio above 1%. The magnetization in FeOx and Fe/FePt layers was decoupled. The moments in FeOx layer were first reversed and followed by coupled Fe/FePt bilayer. The trilayer was annealed again at 500°C and 800°C for 3 minutes. When the FeOx(3 nm)/Fe(3 nm)/FePt trilayer was annealed at 500°C, the layers structure was changed to FeOx(6 nm)/FePt bilayer due to oxygen diffusion. The hard-magnetic FeOx(6 nm)/FePt film was coupled with single switching field. The FeOx/(disordered FePt) layer structure was observed with further annealing at 800°C and presented soft-magnetic loop. In summary, the coupling between soft-magnetic Fe, FeOx layer, and hard-magnetic L10 FePt layer can be controlled by the oxygen diffusion behavior, and the oxidation of Fe layer was tuned by the annealing temperature. The ordered L10 FePt layer was deteriorated by oxygen and became disordered FePt when the annealed temperature was up to 800°C.

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Citations (2)


... By introducing different CrX layers, the tunable lattice misfit can be realized to optimize perpendicular magnetic anisotropy at reduced temperature (Chen et al., 2006a). However, owing to the miscibility of Cr and FePt at low temperature (400 1C), a diffusion buffer layer, such as Pt , MgO (Chen et al., 2007a), TiN (Li et al., 2011a), MoC (Tsai et al., 2014), is required to block Cr diffusion into FePt lattice from the underlayers. ...

Reference:

FePt Thin Films: Fundamentals and Applications
MoC intermediate layer for FePt magnetic recording media
  • Citing Article
  • May 2014

Journal of Applied Physics

... Therefore, we use u of 2.8 MJ/m 3 [16,18] for this work and the minimum stable grain size increases to 3.59 nm [16]. Fe material is used for the soft magnetic material because of epitaxial growth [19]. The s of soft and hard phases is 1200 and 500 kA/m, respectively [18,20]. ...

Magnetic properties and microstructure of FeOx/Fe/FePt and FeOx/FePt films

Journal of Nanomaterials