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Second-harmonic generation in nanostructured metamaterials

机译:纳米结构超材料中的二次谐波产生

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We conduct a theoretical and numerical study on the second-harmonic (SH) optical response of a nanostructured metamaterial composed of a periodic array of inclusions. Both the inclusions and their surrounding matrix are made of centrosymmetrical materials, for which SH is strongly suppressed, but, by appropriately choosing the shape of the inclusions, we may produce a geometrically noncentrosymmetric system which does allow efficient SH generation. Variations in the geometrical configuration allow tuning the linear and quadratic spectra of the optical response of the system. We develop a theory that allows the calculation of the nonlinear polarization from the geometry of the system and its linear dielectric function at the fundamental and second-harmonic frequencies, and we implement an efficient scheme for its numerical computation, extending a formalism for the calculation of the macroscopic dielectric function using Haydock's recursion method. We apply our formalism to an array of holes within an Ag matrix, but it can be readily applied to any metamaterial made of arbitrary materials and for inclusions of any geometry within the long-wavelength regime.
机译:我们对由周期性夹杂物阵列组成的纳米结构超材料的第二次谐波(SH)光学响应进行了理论和数值研究。夹杂物及其周围基质都是由亚离子浆液材料制成的,因为通过适当地选择夹杂物的形状,可以产生几何非团体微分系统,这使得允许有效的几何非团体系统。几何配置中的变化允许调谐系统的光学响应的​​线性和二次光谱。我们开发一个理论,允许在基本和二次谐波频率下计算系统的几何形状的非线性极化及其线性介质功能,并且我们为其数值计算实施了有效的方案,延伸了计算的形式主义使用海杜克递归法的宏观介质功能。我们将形式主义应用于AG矩阵内的一系列孔,但它可以容易地应用于由任意材料制成的任何超大材料,以及用于长波长制度内的任何几何形状的夹杂物。

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