Nonlinear Metasurfaces for Optical Applications

A. Urbas
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Abstract

Metasurfaces have seen dramatic progress in broad band and large area systems recently and advances toward real applications are accelerating. While linear properties of metasurfaces are increasingly entering the engineering space, applications of nonlinear metasurface properties are emerging. Detecting optical signals in the mid and long wave infrared, and the generation, detection and conversion of single photons for quantum information applications are significant to a range of Air Force technologies and drive the research to increase performance and functionality. We explore how nonlinear properties of metasurfaces can be engineered for quantum information applications. We show that nonlinear multipolar interference allows both a non-reciprocal and unidirectional nonlinear generation from nanoelements, with the direction of nonlinear generation preserved with respect to a fixed laboratory coordinate system when reversing the direction of the fundamental field. This arises due to the existence of common (electric or magnetic) pathways inducing the electric and magnetic Mie resonances via a nonlinear interaction, such that switching the phase of one (electric or magnetic) of the vectors of the fundamental field can change simultaneously the phase of all (electric and magnetic) nonlinearly generated multipoles. These effects arise due to the nonlinear response of the component materials and we are actively pursuing novel materials systems and growth procedures to produce structures with controlled response. In order to develop such systems, precise control of structural dimensions at nanometric length scales is needed as well as plasmonic materials which are more resilient to nonlinear excitation intensities. A focus of our work is to explore novel materials systems that combine the functionality needed for nonlinear plasmonic metasurfaces and dynamic optical systems. This system is a useful example of where the engineering of materials response through structure to achieve desired optical properties can enable new potential technologies.
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光学应用中的非线性超表面
最近,超表面在宽带和大面积系统中取得了巨大的进步,并且在实际应用方面的进展正在加速。在超表面线性特性越来越多地进入工程领域的同时,非线性超表面特性的应用也在不断涌现。探测中波和长波红外光信号,以及用于量子信息应用的单光子的产生、探测和转换对空军的一系列技术具有重要意义,并推动了性能和功能的研究。我们探讨了如何将元表面的非线性特性用于量子信息应用。我们表明,非线性多极干涉允许纳米元件产生非互反和单向非线性,当基本场方向反转时,非线性产生的方向相对于固定的实验室坐标系保持不变。这是由于通过非线性相互作用诱导电和磁米氏共振的共同(电或磁)途径的存在而产生的,因此切换基本场矢量的一个(电或磁)的相位可以同时改变所有(电和磁)非线性产生的多极的相位。这些效应是由于组件材料的非线性响应而产生的,我们正在积极寻求新的材料系统和生长程序来生产具有可控响应的结构。为了开发这样的系统,需要在纳米尺度上精确控制结构尺寸,以及对非线性激发强度更有弹性的等离子体材料。我们的工作重点是探索结合非线性等离子体超表面和动态光学系统所需功能的新型材料系统。该系统是一个有用的例子,其中通过结构响应的材料工程可以实现所需的光学特性,从而实现新的潜在技术。
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