Borovkova Olga V, Lutsenko Saveliy V, Kozhaev Mikhail A, Kalish Andrey N, Belotelov Vladimir I
Russian Quantum Center, Novaya Str. 100, Skolkovo, 143025 Moscow, Russia.
Faculty of Physics, Lomonosov Moscow State University, Leninskie Gory, 119991 Moscow, Russia.
Nanomaterials (Basel). 2022 Jan 26;12(3):405. doi: 10.3390/nano12030405.
A method of spectrally selective detection of short spin waves (or magnons) by means of the transverse magneto-optical (MO) intensity effect in transmission in the magnetoplasmonic nanostructure is proposed. We considered the spin waves with a wavelength equal to or less than (by an integer number of times) the period of the plasmonic structure, that is, of the order of hundreds of nanometers or 1-2 μm. The method is based on the analysis of the MO effect spectrum versus the modulation of the sample magnetization (created by the spin wave) and related spatial symmetry breaking in the magnetic layer. The spatial symmetry breaking leads to the appearance of the MO effect modulation at the normal incidence of light in the spectral range of the optical states (the SPP and the waveguide modes) and the breaking of the antisymmetry of the effect with respect to the sign of the incidence angle of light. We reveal that the magnitude of the MO effect varies periodically depending on the spatial shift of the spin wave with respect to the plasmonic grating. The period of this modulation is equal to the period of the spin wave. All these facts allow for the detection of spin waves of a certain wavelength propagating in a nanostructure by measuring the MO response.
提出了一种利用磁等离子体纳米结构中传输的横向磁光(MO)强度效应来光谱选择性检测短自旋波(或磁振子)的方法。我们考虑了波长等于或小于(整数倍)等离子体结构周期的自旋波,即几百纳米或1 - 2微米量级的自旋波。该方法基于对MO效应光谱与样品磁化强度调制(由自旋波产生)以及磁层中相关空间对称性破缺的分析。空间对称性破缺导致在光的正常入射下,在光学态(表面等离激元极化激元(SPP)和波导模式)的光谱范围内出现MO效应调制,并且该效应相对于光入射角符号的反对称性被打破。我们发现,MO效应的大小会随着自旋波相对于等离子体光栅的空间位移而周期性变化。这种调制的周期等于自旋波的周期。所有这些事实使得通过测量MO响应能够检测在纳米结构中传播的特定波长的自旋波。