非均质磁化分布结构中的二次谐波生成

IF 0.4 4区 物理与天体物理 Q4 PHYSICS, MULTIDISCIPLINARY Moscow University Physics Bulletin Pub Date : 2024-07-04 DOI:10.3103/s0027134924700206
I. A. Kolmychek, V. B. Novikov, A. I. Maydykovskiy, T. B. Murzina
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引用次数: 0

摘要

摘要 激光辐射与磁性介质的相互作用是一个快速发展的研究领域,为观察新的效应以及研究和描述微观和宏观层面的磁性材料提供了广泛的可能性。随着现代技术的发展,这一点尤为重要,因为现代技术可以创造出具有全新磁性和光学特性的结构,而这些特性在天然材料中是不可能实现的。本综述介绍了有关铁磁纳米和微结构以及不同成分薄膜中非线性光学效应的研究成果。文章展示了对各向异性、涡旋和交换偏置磁性结构进行非线性光学诊断的独特可能性,以及铁石榴石表层微观磁性结构的可视化。这些方法的卓越功效既基于光学二次谐波发生方法对纳米结构和界面磁性状态的高灵敏度,也基于高阶磁化诱导感性张量的对称特性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Second Harmonic Generation in Structures with Inhomogeneous Magnetization Distribution

Abstract

The interaction of laser radiation with magnetic media is a rapidly developing field of research, offering broad possibilities both for observing new effects and for studying and characterizing magnetic materials at micro- and macrolevels. This is especially important in connection with the development of modern technologies, which allow the creation of structures with fundamentally new magnetic and optical properties, whose realization is impossible in natural materials. The review presents the results of research on nonlinear optical effects in ferromagnetic nano- and microstructures, as well as films of different compositions. The unique possibilities of nonlinear optical diagnostics of anisotropic, vortex, and exchange-biased magnetic structures, visualization of the micromagnetic structure of surface layers of iron–garnets are demonstrated. The exceptional effectiveness of these approaches is based both on the high sensitivity of the method of optical second harmonic generations to the magnetic state of nanostructures and interfaces, and on the properties of symmetry of tensors of high-order magnetization-induced susceptibility.

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来源期刊
Moscow University Physics Bulletin
Moscow University Physics Bulletin PHYSICS, MULTIDISCIPLINARY-
CiteScore
0.70
自引率
0.00%
发文量
129
审稿时长
6-12 weeks
期刊介绍: Moscow University Physics Bulletin publishes original papers (reviews, articles, and brief communications) in the following fields of experimental and theoretical physics: theoretical and mathematical physics; physics of nuclei and elementary particles; radiophysics, electronics, acoustics; optics and spectroscopy; laser physics; condensed matter physics; chemical physics, physical kinetics, and plasma physics; biophysics and medical physics; astronomy, astrophysics, and cosmology; physics of the Earth’s, atmosphere, and hydrosphere.
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