Magneto-optical tuning of ferromagnetic resonance in silicon-doped yttrium iron garnet

M Maksym A. Popov (Educational and Scientific Institute of High Technologies, Taras Shevchenko National University of Kyiv 1 , Kyiv 01601,) H Hryhorii L. Chumak (Educational and Scientific Institute of High Technologies, Taras Shevchenko National University of Kyiv 1 , Kyiv 01601,) O Oleksandr Klimov (Educational and Scientific Institute of High Technologies, Taras Shevchenko National University of Kyiv 1 , Kyiv 01601,) Y Yurii Shepelytskyi (Department of Chemistry, Lakehead University 2 , Thunder Bay, Ontario P7B 5E1,) J Janos Rado (Department of Physics, Lakehead University 4 , Thunder Bay, Ontario P7B 5E1,) A Alla Reznik (Department of Physics, Lakehead University 4 , Thunder Bay, Ontario P7B 5E1,) M Mitchell S. Albert (Department of Chemistry, Lakehead University 2 , Thunder Bay, Ontario P7B 5E1,) M Michael R. Page (Foundational Technologies Directorate, Air Force Research Laboratory 1 , Wright-Patterson Air Force Base, Ohio 45433,) G Gopalan Srinivasan (Department of Physics, Oakland University 2 , Rochester, Michigan 48309,)

Abstract

This report is on experiments and theory on the process of optically stimulated electron population density redistribution in Si-substituted yttrium-iron garnet single crystals at 77 K. It was determined that a photo-induced uniaxial anisotropy field arose in the YIG:Si sample in response to illumination by quasi-linearly polarized laser (λ = 808 nm) leading to redistribution of Fe2+ ions among the nonequivalent octahedral sites. The photo-induced field was measured by variation of ferromagnetic resonance (FMR) frequencies in the X-band. The measured FMR frequency shift demonstrated a pronounced dependence on the polarization vector orientation with respect to crystallographic axes, in accordance with the theory discussed here. The frequency shift dependence on light intensity (for optimal polarization orientation) was found to be nearly linear, at least within the output intensity range of the optical source. The maximum frequency shift was −130 MHz for 75 mW applied optical power. A similar phenomenon was also observed at room temperature but was attributed to the sample heating by the incident light. The results presented here demonstrate the potential of the phenomenon for application in the development of ferrite signal processing devices with dual tuning by both magnetic field and optical irradiation.

Article Details

Volume / Issue Vol. 137, Issue 13
Published April 07, 2025
ISSN 0021-8979
Publisher American Institute of Physics

Journal Info

Journal of Applied Physics

American Institute of Physics

ISSN: 0021-8979 Physical Sciences

Authors (9)

M

Maksym A. Popov

Educational and Scientific Institute of High Technologies, Taras Shevchenko National University of Kyiv 1 , Kyiv 01601,

H

Hryhorii L. Chumak

Educational and Scientific Institute of High Technologies, Taras Shevchenko National University of Kyiv 1 , Kyiv 01601,

O

Oleksandr Klimov

Educational and Scientific Institute of High Technologies, Taras Shevchenko National University of Kyiv 1 , Kyiv 01601,

Y

Yurii Shepelytskyi

Department of Chemistry, Lakehead University 2 , Thunder Bay, Ontario P7B 5E1,

J

Janos Rado

Department of Physics, Lakehead University 4 , Thunder Bay, Ontario P7B 5E1,

A

Alla Reznik

Department of Physics, Lakehead University 4 , Thunder Bay, Ontario P7B 5E1,

M

Mitchell S. Albert

Department of Chemistry, Lakehead University 2 , Thunder Bay, Ontario P7B 5E1,

M

Michael R. Page

Foundational Technologies Directorate, Air Force Research Laboratory 1 , Wright-Patterson Air Force Base, Ohio 45433,

G

Gopalan Srinivasan

Department of Physics, Oakland University 2 , Rochester, Michigan 48309,