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通过光谱可调谐超短激光脉冲对磁光子晶体中自旋动力学进行空间选择性激发。

Spatially selective excitation of spin dynamics in magneto-photonic crystals by spectrally tunable ultrashort laser pulses.

作者信息

Sylgacheva Daria A, Khokhlov Nikolai E, Gerevenkov Petr I, Filatov Iaroslav A, Kozhaev Mikhail A, Savochkin Igor V, Kalish Andrey N, Kalashnikova Alexandra M, Belotelov Vladimir I

机构信息

Faculty of Physics, M. V. Lomonosov Moscow State University, 1 bld. 2 Leninskie Gory, 119991, Moscow, Russia.

Russian Quantum Center, 30 bld. 1 Bolshoy Bulvar, Skolkovo IC, 121205, Moscow, Russia.

出版信息

Nanophotonics. 2022 May 31;11(13):3169-3176. doi: 10.1515/nanoph-2022-0233. eCollection 2022 Jun.

Abstract

In this work, we tackle the problem of the spatially selective optical excitation of spin dynamics in structures with multiple magnetic layers. The 120 fs circularly polarized laser pulses were used to launch magnetization precession in an all-dielectric magneto-photonic crystals (MPC) formed by magnetic layers sandwiched between and inside two magnetic Bragg mirrors. Optical pump-probe experiments reveal magnetization precession triggered via ultrafast inverse Faraday effect with an amplitude strongly dependent on the pump central wavelength: maxima of the amplitude are achieved for the wavelength tuned at the cavity resonance and at the edge of the photonic bandgap. The optical impact on the spins caused by the inverse Faraday effect and spectrum of this effect are found to correlate mostly to the direct Faraday effect. We show that even though the pump laser pulses propagate along the whole structure tuning their wavelength allows localization of a larger spin precession either in the cavity layer or in the Bragg mirror layers selectively. The results pave the way to the ultrafast optical control of magnetization dynamics at a sub-wavelength scale that is vital for modern magneto-photonics and magnonics.

摘要

在这项工作中,我们解决了具有多个磁性层的结构中自旋动力学的空间选择性光学激发问题。使用120飞秒圆偏振激光脉冲在由夹在两个磁性布拉格镜之间和内部的磁性层形成的全介质磁光子晶体(MPC)中引发磁化进动。光泵浦 - 探测实验揭示了通过超快逆法拉第效应触发的磁化进动,其幅度强烈依赖于泵浦中心波长:在腔共振波长和光子带隙边缘调谐的波长处实现了幅度最大值。发现由逆法拉第效应引起的对自旋的光学影响及其效应光谱与直接法拉第效应大多相关。我们表明,尽管泵浦激光脉冲沿整个结构传播,但通过调整其波长可以在腔层或布拉格镜层中选择性地定位更大的自旋进动。这些结果为亚波长尺度上的磁化动力学超快光学控制铺平了道路,这对现代磁光子学和磁子学至关重要。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5be9/11501707/6fea61aa32d3/j_nanoph-2022-0233_fig_001.jpg

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