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Nonlinear Optics in Dielectric Guided-Mode Resonant Structures and Resonant Metasurfaces

机译:介电导模共振结构和共振超表面的非线性光学

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摘要

Nonlinear optics is an important area of photonics research for realizing active optical functionalities such as light emission, frequency conversion, and ultrafast optical switching for applications in optical communication, material processing, precision measurements, spectroscopic sensing and label-free biological imaging. An emerging topic in nonlinear optics research is to realize high efficiency optical functionalities in ultra-small, sub-wavelength length scale structures by leveraging interesting optical resonances in surface relief metasurfaces. Such artificial surfaces can be engineered to support high quality factor resonances for enhanced nonlinear optical interaction by leveraging interesting physical mechanisms. The aim of this review article is to give an overview of the emerging field of nonlinear optics in dielectric based sub-wavelength periodic structures to realize efficient harmonic generators, wavelength mixers, optical switches etc. Dielectric metasurfaces support the realization of high quality-factor resonances with electric field concentrated either inside or in the vicinity of the dielectric media, while at the same time operate at high optical intensities without damage. The periodic dielectric structures considered here are broadly classified into guided-mode resonant structures and resonant metasurfaces. The basic physical mechanisms behind guided-mode resonances, electromagnetically-induced transparency like resonances and bound-states in continuum resonances in periodic photonic structures are discussed. Various nonlinear optical processes studied in such structures with example implementations are also reviewed. Finally, some future directions of interest in terms of realizing large-area metasurfaces, techniques for enhancing the efficiency of the nonlinear processes, heterogenous integration, and extension to non-conventional wavelength ranges in the ultra-violet and infrared region are discussed.
机译:非线性光学是光子学研究的重要领域,可实现主动的光学功能,例如发光,频率转换和超快光学开关,以用于光通信,材料处理,精度测量,光谱传感和无标签生物成像。非线性光学研究中的一个新兴主题是,通过利用表面起伏超颖表面中有趣的光学共振,在超小型亚波长长度尺度结构中实现高效的光学功能。通过利用有趣的物理机制,可以将此类人造表面设计为支持高质量因子共振,以增强非线性光学相互作用。本文的目的是概述基于介电的亚波长周期结构中非线性光学的新兴领域,以实现高效的谐波发生器,波长混合器,光开关等。介电超表面支持实现高质量因数谐振电场集中在介电介质内部或附近,同时在高光强度下工作而不会损坏。这里考虑的周期性介电结构大致分为导模谐振结构和谐振超表面。讨论了引导模式共振,电磁感应的透明性(如共振)和周期性光子结构中连续共振中的束缚态背后的基本物理机制。还回顾了在具有示例实现的这种结构中研究的各种非线性光学过程。最后,讨论了在实现大面积超颖表面,增强非线性过程效率,异质积分以及扩展紫外和红外区域非常规波长范围方面的技术方面的未来关注方向。

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