Optical and magneto-optical behavior of Cerium Yttrium Iron Garnet thin films at wavelengths of 200–1770 nm

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作者
Mehmet C. Onbasli
Lukáš Beran
Martin Zahradník
Miroslav Kučera
Roman Antoš
Jan Mistrík
Gerald F. Dionne
Martin Veis
Caroline A. Ross
机构
[1] Massachusetts Institute of Technology,Department of Materials Science and Engineering
[2] 77 Massachusetts Avenue,undefined
[3] MIT Cambridge,undefined
[4] Charles University of Prague,undefined
[5] Faculty of Mathematics and Physics,undefined
[6] University of Pardubice,undefined
[7] Faculty of Chemical Technology,undefined
[8] Institute of Applied Physics and Mathematics,undefined
[9] Studentska 95,undefined
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Scientific Reports | / 6卷
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摘要
Magneto-optical cerium-substituted yttrium iron garnet (Ce:YIG) thin films display Faraday and Kerr rotation (rotation of light polarisation upon transmission and reflection, respectively) as well as a nonreciprocal phase shift due to their non-zero off-diagonal permittivity tensor elements and also possess low optical absorption in the near-infrared. These properties make Ce:YIG useful in providing nonreciprocal light propagation in integrated photonic circuits, which is essential for accomplishing energy-efficient photonic computation and data transport architectures. In this study, 80 nm-thick Ce:YIG films were grown on Gadolinium Gallium Garnet substrates with (100), (110) and (111) orientations using pulsed laser deposition. The films had bulk-like structural and magnetic quality. Faraday and Kerr spectroscopies along with spectroscopic ellipsometry were used to deduce the complete permittivity tensor of the films in the ultraviolet, visible and near-infrared spectral region and the magneto-optical figure of merit as a function of wavelength was determined. The samples showed the highest IR Faraday rotation reported for thin films of Ce:YIG, which indicates the importance of this material in development of nonreciprocal photonic devices.
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