Bin-Alam M Saad, Baxter Joshua, Awan Kashif M, Kiviniemi Antti, Mamchur Yaryna, Lesina Antonio Calà, Tsakmakidis Kosmas L, Huttunen Mikko J, Ramunno Lora, Dolgaleva Ksenia
School of Electrical Engineering and Computer Science, University of Ottawa, Ottawa, Ontairo K1N 6N5, Canada.
Department of Physics, University of Ottawa, Ottawa, Ontario K1N 6N5, Canada.
Nano Lett. 2021 Jan 13;21(1):51-59. doi: 10.1021/acs.nanolett.0c02991. Epub 2020 Dec 24.
Plasmonic metasurfaces are promising as enablers of nanoscale nonlinear optics and flat nonlinear optical components. Nonlinear optical responses of such metasurfaces are determined by the nonlinear optical properties of individual plasmonic meta-atoms. Unfortunately, no simple methods exist to determine the nonlinear optical properties (hyperpolarizabilities) of the meta-atoms hindering the design of nonlinear metasurfaces. Here, we develop the equivalent circuit (resistor, inductor, capacitor) model of such meta-atoms to estimate their second-order nonlinear optical properties, that is, the first-order hyperpolarizability in the optical spectral range. In parallel, we extract from second-harmonic generation experiments the first-order hyperpolarizabilities of individual meta-atoms consisting of asymmetrically shaped (elongated) plasmonic nanoprisms, verified with detailed calculations using both nonlinear hydrodynamic-FDTD and nonlinear scattering theory. All three approaches, analytical, experimental, and computational, yield results that agree very well. Our empirical model can thus be used as a simple tool to enable an efficient design of nonlinear plasmonic metasurfaces.
表面等离激元超表面有望成为纳米级非线性光学和平面非线性光学元件的推动者。此类超表面的非线性光学响应由单个表面等离激元元原子的非线性光学特性决定。不幸的是,目前尚无简单方法来确定元原子的非线性光学特性(超极化率),这阻碍了非线性超表面的设计。在此,我们开发了此类元原子的等效电路(电阻、电感、电容)模型,以估计其二阶非线性光学特性,即在光谱范围内的一阶超极化率。同时,我们从二次谐波产生实验中提取了由不对称形状(拉长)的表面等离激元纳米棱镜组成的单个元原子的一阶超极化率,并通过使用非线性流体动力学有限时域差分法和非线性散射理论的详细计算进行了验证。分析、实验和计算这三种方法所得结果非常吻合。因此,我们的经验模型可作为一种简单工具,用于高效设计非线性表面等离激元超表面。