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Theoretical and computational analysis of second- and third-harmonic generation in periodically patterned graphene and transition-metal dichalcogenide monolayers

机译:周期性图案化的石墨烯和过渡金属二硫化碳单分子膜中第二和第三谐波产生的理论和计算分析

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摘要

Remarkable optical and electrical properties of two-dimensional (2D) materials, such as graphene and transition-metal dichalcogenide (TMDC) monolayers, offer vast technological potential for novel and improved optoelectronic nanodevices, many of which rely on nonlinear optical effects in these 2D materials. This paper introduces a highly effective numerical method for efficient and accurate description of linear and nonlinear optical effects in nanostructured 2D materials embedded in periodic photonic structures containing regular three-dimensional (3D) optical materials, such as diffraction gratings and periodic metamaterials. The proposed method builds upon the rigorous coupled-wave analysis and incorporates the nonlinear optical response of 2D materials by means of modified electromagnetic boundary conditions. This allows one to reduce the mathematical framework of the numerical method to an inhomogeneous scattering matrix formalism, which makes it more accurate and efficient than previously used approaches. An overview of linear and nonlinear optical properties of graphene and TMDC monolayers is given and the various features of the corresponding optical spectra are explored numerically and discussed. To illustrate the versatility of our numerical method, we use it to investigate the linear and nonlinear multiresonant optical response of 2D-3D heteromaterials for enhanced and tunable second- and third-harmonic generation. In particular, by employing a structured 2D material optically coupled to a patterned slab waveguide, we study the interplay between geometric resonances associated to guiding modes of periodically patterned slab waveguides and plasmon or exciton resonances of 2D materials.
机译:二维(2D)材料(例如石墨烯和过渡金属二硫化碳(TMDC)单层)的显着光学和电学性质为新型和改进的光电纳米器件提供了巨大的技术潜力,其中许多依赖于这些2D材料中的非线性光学效应。本文介绍了一种高效的数值方法,用于有效和准确地描述嵌入周期性光子结构中的纳米结构2D材料中的线性和非线性光学效应,该周期性光子结构包含规则的三维(3D)光学材料,例如衍射光栅和周期性超材料。所提出的方法建立在严格的耦合波分析基础上,并通过修改的电磁边界条件结合了二维材料的非线性光学响应。这使人们可以将数值方法的数学框架简化为一种不均匀的散射矩阵形式,这使其比以前使用的方法更加准确和有效。概述了石墨烯和TMDC单层的线性和非线性光学性质,并对相应光谱的各种特征进行了数值研究和讨论。为了说明我们数值方法的多功能性,我们使用它来研究2D-3D异质材料的线性和非线性多谐振光学响应,以增强和可调第二和第三谐波的产生。特别地,通过采用光学耦合到图案化平板波导的结构化2D材料,我们研究了与周期性图案化平板波导的引导模式相关的几何共振与2D材料的等离激元或激子共振之间的相互作用。

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  • 来源
    《Physical review. B, Condensed Matter And Materals Physics》 |2016年第3期|035435.1-035435.26|共26页
  • 作者单位

    Department of Electronic and Electrical Engineering, University College London, Torrington Place, London WC1E 7JE, United Kingdom;

    Department of Electronic and Electrical Engineering, University College London, Torrington Place, London WC1E 7JE, United Kingdom;

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