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自旋轨道相互作用驱动的过渡金属中的太赫兹非线性动力学

Spin-orbit interaction driven terahertz nonlinear dynamics in transition metals.

作者信息

Salikhov Ruslan, Lysne Markus, Werner Philipp, Ilyakov Igor, Schüler Michael, de Oliveira Thales V A G, Ponomaryov Alexey, Arshad Atiqa, Prajapati Gulloo Lal, Deinert Jan-Christoph, Makushko Pavlo, Makarov Denys, Cowan Thomas, Fassbender Jürgen, Lindner Jürgen, Lindner Aleksandra, Ortix Carmine, Kovalev Sergey

机构信息

Helmholtz-Zentrum Dresden-Rossendorf, Dresden, Germany.

Department of Physics, University of Fribourg, Fribourg, Switzerland.

出版信息

Npj Spintron. 2025;3(1):3. doi: 10.1038/s44306-024-00068-7. Epub 2025 Jan 27.

Abstract

The interplay of electronic charge, spin, and orbital currents, coherently driven by picosecond long oscillations of light fields in spin-orbit coupled systems, is the foundation of emerging terahertz lightwave spintronics and orbitronics. The essential rules for how terahertz fields interact with these systems in a nonlinear way are still not understood. In this work, we demonstrate a universally applicable electronic nonlinearity originating from spin-orbit interactions in conducting materials, wherein the interplay of light-induced spin and orbital textures manifests. We utilized terahertz harmonic generation spectroscopy to investigate the nonlinear dynamics over picosecond timescales in various transition metal films. We found that the terahertz harmonic generation efficiency scales with the spin Hall conductivity in the studied films, while the phase takes two possible values (shifted by π), depending on the -shell filling. These findings elucidate the fundamental mechanisms governing non-equilibrium spin and orbital polarization dynamics at terahertz frequencies, which is relevant for potential applications of terahertz spin- and orbital-based devices.

摘要

在自旋轨道耦合系统中,由皮秒级光场振荡相干驱动的电荷、自旋和轨道电流之间的相互作用,是新兴太赫兹光波自旋电子学和轨道电子学的基础。太赫兹场如何以非线性方式与这些系统相互作用的基本规则仍未被理解。在这项工作中,我们展示了一种源自导电材料中自旋轨道相互作用的普遍适用的电子非线性,其中光诱导自旋和轨道纹理之间的相互作用得以体现。我们利用太赫兹谐波产生光谱来研究各种过渡金属薄膜中皮秒时间尺度上的非线性动力学。我们发现,在所研究的薄膜中,太赫兹谐波产生效率与自旋霍尔电导率成正比,而相位则有两个可能的值(相差π),这取决于壳层填充情况。这些发现阐明了在太赫兹频率下控制非平衡自旋和轨道极化动力学的基本机制,这与基于太赫兹自旋和轨道的器件的潜在应用相关。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b634/11772253/6c8347a9545f/44306_2024_68_Fig1_HTML.jpg

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