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有限光栅激发的表面等离激元极化激元的散射振幅

Scattering Amplitude of Surface Plasmon Polariton Excited by a Finite Grating.

作者信息

Dyshlyuk Anton V, Proskurin Alexey, Bogdanov Andrey A, Vitrik Oleg B

机构信息

Institute of Automation and Control Processes, Far Eastern Branch of the Russian Academy of Sciences, Vladivostok 690041, Russia.

School of Engineering, Far Eastern Federal University, Vladivostok 690090, Russia.

出版信息

Nanomaterials (Basel). 2023 Jul 17;13(14):2091. doi: 10.3390/nano13142091.

Abstract

Unusual optical properties of laser-ablated metal surfaces arise from the excitation of local plasmon resonances in nano- and microstructures produced by laser-processing and from the mutual interaction of those structures through surface plasmon polariton (SPP) waves. This interaction provides a synergistic effect, which can make the optical properties of the composite nanostructure drastically different from the properties of its elements. At the same time, the prediction and analysis of these properties are hampered by the complexity of the analytical solution to the problem of SPP excitation by surface objects of arbitrary configuration. Such a problem can be reduced to a simpler one if one considers the geometry of a structured surface as a superposition of harmonic Fourier components. Therefore, the analytical solution to the problem of surface plasmon polariton excitation through the scattering of light by a sinusoidally perturbed plasmonic metal/vacuum boundary becomes very important. In this work, we show that this problem can be solved using a well-known method for calculating guided-mode amplitudes in the presence of current sources, which is used widely in the waveguide theory. The calculations are carried out for the simplest 2D cases of (1) a sinusoidal current of finite length and (2) a finite-length sinusoidal corrugation on a plasmonic metal surface illuminated by a normally incident plane wave. The analytical solution is compared with the results of numerical simulations. It is shown that, in the first case, the analytical and numerical solutions agree almost perfectly. In the second case, the analytical solution correctly predicts the optimum height of the corrugation xopt, providing the maximum SPP excitation efficiency. At the same time, the analytical and numerical values of the SPP amplitude agree very well when the corrugation height turns out to be x≪xopt or x≫xopt (at least up to 3xopt); at x=xopt, the mismatch of those does not exceed 25%. The limitations of the analytical model leading to such a mismatch are discussed. We believe that the presented approach is useful for modeling various phenomena associated with SPP excitation.

摘要

激光烧蚀金属表面的异常光学特性源于激光加工产生的纳米和微结构中局部等离子体共振的激发,以及这些结构通过表面等离子体激元(SPP)波的相互作用。这种相互作用产生了协同效应,使得复合纳米结构的光学特性与其组成元素的特性有很大不同。同时,由于任意构型的表面物体激发SPP问题的解析解很复杂,阻碍了对这些特性的预测和分析。如果将结构化表面的几何形状视为谐波傅里叶分量的叠加,那么这个问题可以简化为一个更简单的问题。因此,通过正弦扰动的等离子体金属/真空边界对光的散射来激发表面等离子体激元问题的解析解变得非常重要。在这项工作中,我们表明可以使用波导理论中广泛使用的一种计算存在电流源时导模振幅的著名方法来解决这个问题。针对最简单的二维情况进行了计算:(1)有限长度的正弦电流;(2)在垂直入射平面波照射下的等离子体金属表面上的有限长度正弦波纹。将解析解与数值模拟结果进行了比较。结果表明,在第一种情况下,解析解和数值解几乎完全一致。在第二种情况下,解析解正确地预测了波纹的最佳高度xopt,该高度提供了最大的SPP激发效率。同时,当波纹高度x≪xopt或x≫xopt(至少到3xopt)时,SPP振幅的解析值和数值值非常吻合;在x = xopt时,两者的不匹配不超过25%。讨论了导致这种不匹配的解析模型的局限性。我们认为所提出的方法对于模拟与SPP激发相关的各种现象很有用。

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