Resonance Enhancement of the Faraday Effect in a Magnetoplasmonic Composite

IF 1.1 4区 材料科学 Q3 METALLURGY & METALLURGICAL ENGINEERING Physics of Metals and Metallography Pub Date : 2024-05-27 DOI:10.1134/s0031918x23603001
S. V. Tomilin, A. V. Karavaynikov, S. D. Lyashko, E. T. Milyukova, O. A. Tomilina, V. N. Berzhansky
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Abstract

The paper presents the results of a theoretical and experimental study of the enhancement of the magneto-optical Faraday effect in a magnetoplasmonic nanocomposite, caused by localized plasmon resonance (LPR) in metal nanoparticles. The nanocomposite comprises a three-layer structure of self-assembled gold nanoparticles in a bismuth-substituted iron-garnet matrix. It is shown theoretically and experimentally that the enhancement of the magneto-optical Faraday effect is determined by the action of a magnetic field on the magnetoplasmonic composite as an effective medium as a whole. In this case, in the magnetoplasmonic nanocomposite, the Faraday effect is enhanced at the LPR wavelengths and is slightly weakened in the region of short wavelengths relative to the LPR. It is theoretically shown that the complex gyration index in the off-diagonal terms of the effective permittivity tensor for the magnetoplasmonic composite, in addition to rotation of the polarization plane, leads to the appearance of alternating ellipticity in the vicinity of the plasmon resonance, which is observed in the form of asymmetry of magneto-optical rotation.

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磁悬浮复合材料中法拉第效应的共振增强
摘要 本文介绍了对金属纳米粒子局域等离子体共振(LPR)引起的磁光电纳米复合材料磁光法拉第效应增强的理论和实验研究结果。这种纳米复合材料由自组装金纳米粒子在铋替代铁石榴石基体中的三层结构组成。理论和实验证明,磁光法拉第效应的增强取决于磁场对作为有效介质的磁光电复合材料整体的作用。在这种情况下,在磁性纳米复合材料中,法拉第效应在 LPR 波长处增强,而在相对于 LPR 的短波长区域则略有减弱。理论表明,除了极化平面的旋转之外,磁致共振复合材料有效介电常数张量对角线外项中的复回旋指数导致等离子体共振附近出现交替椭圆,这是以磁光旋转不对称的形式观察到的。
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来源期刊
Physics of Metals and Metallography
Physics of Metals and Metallography 工程技术-冶金工程
CiteScore
2.00
自引率
25.00%
发文量
108
审稿时长
3 months
期刊介绍: The Physics of Metals and Metallography (Fizika metallov i metallovedenie) was founded in 1955 by the USSR Academy of Sciences. Its scientific profile involves the theory of metals and metal alloys, their electrical and magnetic properties, as well as their structure, phase transformations, and principal mechanical properties. The journal also publishes scientific reviews and papers written by experts involved in fundamental, application, and technological studies. The annual volume of publications amounts to some 250 papers submitted from 100 leading national scientific institutions.
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