| Literature DB >> 28787818 |
Eva Jesenská1,2, Takahiro Hashinaka3, Takayuki Ishibashi4, Lukáš Beran5, Ján Dušek6, Roman Antoš7, Kiyoshi Kuga8, Ken-Ichi Aoshima9, Kenji Machida10, Hidekazu Kinjo11, Martin Veis12.
Abstract
Optical and magneto-optical properties of amorphous Gd22Fe78 (GdFe) thin films prepared by direct current (DC) sputtering on thermally oxidized substrates were characterized by the combination of spectroscopic ellipsometry and magneto-optical spectroscopy in the photon energy range from 1.5 to 5.5 eV. Thin SiNx and Ru coatings were used to prevent the GdFe surface oxidation and contamination. Using advanced theoretical models spectral dependence of the complete permittivity tensor and spectral dependence of the absorption coefficient were deduced from experimental data. No significant changes in the optical properties upon different coatings were observed, indicating reliability of used analysis.Entities:
Keywords: GdFe; magneto-optics; spectroscopic ellipsometry
Year: 2016 PMID: 28787818 PMCID: PMC5456515 DOI: 10.3390/ma9010023
Source DB: PubMed Journal: Materials (Basel) ISSN: 1996-1944 Impact factor: 3.623
Structural compositions and nominal thicknesses of examined samples.
| Sample | Substrate | Layer 1 | Layer 2 | Layer 3 |
|---|---|---|---|---|
| Ru coated | Si | SiO2 (300 nm) | Gd22Fe78 (100 nm) | Ru (3 nm) |
| SiN | Si | SiO2 (300 nm) | Gd22Fe78 (100 nm) | SiN |
Figure 1Measured variable angle spectroscopic ellipsometric data of (a) Ru coated sample and (b) SiN coated sample are compared with theoretical calculations (lines). Dark cyan, olive and green symbols correspond to Psi measurements at angles 65°, 70°, 75° respectively. Red, purple and violet symbols correspond to Delta measurements at angles 65°, 70°, 75° respectively.
Parameters of oscillators for model of GdFe layer for 1.5–6 eV spectral range. In here, E stands for central energies of oscillators; Amp represents amplitudes of oscillators and Br broadenings. For Drude term, N represents carrier concentration, μ carrier mobility and m* carrier effective mass.
| Oscillator Type | Amp | Br (eV) | |
|---|---|---|---|
| Lorentz | 1.89 | 5.66 | 1.87 |
| Lorentz | 2.57 | 3.34 | 1.04 |
| Gaussian | 3.75 | 0.60 | 0.39 |
| Gaussian | 4.03 | 0.75 | 0.50 |
| - | μ (cm2·V−1s−1) | ||
| Drude | 1.11 × 1023 | 0.36 | 0.53 |
Thicknesses used to model GdFe layer for 1.5–6 eV spectral range. In here, t stands for thickness and r for roughness on top.
| Sample | |||||
|---|---|---|---|---|---|
| Ru coated | 304 | 105 | 3.3 | - | 2 |
| SiN | 304 | 105 | - | 21 | 3 |
Figure 2Real and imaginary part of diagonal permittivity tensor elements of GdFe. Black line corresponds to the real part ε1 and blue line to the imaginary part ε1 respectively.
Figure 3Calculated absorption coefficient of GdFe.
Figure 4Polar magneto-optical Kerr effect (MOKE) rotation and ellipticity spectra of (a) Ru coated sample and (b) SiN coated sample. Black symbols correspond to Kerr rotation; red symbols correspond to Kerr ellipticity.
Figure 5Real and imaginary part of off-diagonal permittivity tensor elements of GdFe. Dash-dot lines correspond to calculations from the Ru coated sample MOKE spectra, dotted lines correspond to calculations from the SiN coated sample MOKE spectra. Pink line corresponds to the averaged real part ε2r and green line to the averaged imaginary part ε2 respectively.