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Fizika Tverdogo Tela, 2009 Volume 51, Issue 9, Pages 1729–1734 (Mi ftt14337)

This article is cited in 18 papers

Optical properties

Optical and magneto-optical properties of nanostructured yttrium iron garnet

B. A. Gizhevskiia, Yu. P. Sukhorukova, E. A. Gan'shinab, N. N. Loshkarevaa, A. V. Telegina, N. I. Lobachevskayac, V. S. Gavikoa, V. P. Pilyugina

a Institute of Metal Physics, Ural Branch of the Russian Academy of Sciences, Ekaterinburg
b Lomonosov Moscow State University
c Institute of Solid State Chemistry, Urals Branch of the Russian Academy of Sciences, Ekaterinburg

Abstract: Bulk dense samples of nanostructured yttrium iron garnet Y$_3$Fe$_5$O$_{12}$ with crystallite sizes of 20–40 nm are prepared by high-pressure torsion from a garnet powder with micron grains. The absorption and Faraday rotation spectra in the IR range and the transverse Kerr effect spectra in the visible spectral range for these samples are measured. The absorption and magneto-optical effect spectra are in agreement with the corresponding spectra of single crystals. The appearance of additional absorption bands at 2 and 3 $\mu$m is associated with the violation of the stoichiometry of the nanogarnet and the possible contamination of the initial material. The specific Faraday rotation in the transparency window is approximately 1.5 times smaller than the corresponding quantity for single crystals. The extrema in the Kerr effect spectra coincide with those for single crystals, are smaller in magnitude, and are smeared. On the whole, the prepared bulk samples are transparent in the IR spectral range and exhibit optical and magneto-optical characteristics comparable to the corresponding parameters for single crystals. The high density of point defects of the nanogarnet is primarily due to the violation of the stoichiometry and the valence state of iron ions.

Received: 24.12.2008


 English version:
Physics of the Solid State, 2009, 51:9, 1836–1842

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