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PT对称二维纳米天线阵列中的光谱奇点与非对称光散射

Spectral singularities and asymmetric light scattering in PT-symmetric 2D nanoantenna arrays.

作者信息

Tapar Jinal, Kishen Saurabh, Emani Naresh Kumar

出版信息

Opt Lett. 2020 Sep 15;45(18):5185-5188. doi: 10.1364/OL.398551.

Abstract

The intriguing physics of non-Hermitian systems satisfying parity-time (PT) symmetry has spurred a surge of both theoretical and experimental research in interleaved gain-loss systems for novel photonic devices. In this work, we investigate vertically stacked GaInP PT-symmetric nanodisk resonators arranged in two-dimensional periodic lattice using full-wave numerical simulations and scattering matrix theory. The proposed dielectric metasurface supports lasing spectral singularities with asymmetric reflection and highly anisotropic far-field scattering patterns. It offers a much broader design parameter space to control wavelength, scattering direction, and efficiency of optical emission when compared to the predominantly one-dimentional (1D) or quasi-1D structures studied so far. The proposed system with Q-factor >10 serves as a powerful platform for enhanced light-matter interaction by enabling extensive control of asymmetric light scattering, amplification, and unprecedented localization of electromagnetic fields.

摘要

满足宇称时间(PT)对称性的非厄米系统的有趣物理特性,激发了人们对用于新型光子器件的交错增益-损耗系统进行大量理论和实验研究。在这项工作中,我们使用全波数值模拟和散射矩阵理论,研究了排列在二维周期晶格中的垂直堆叠的GaInP PT对称纳米盘谐振器。所提出的介电超表面支持具有不对称反射和高度各向异性远场散射图案的激光光谱奇点。与迄今为止主要研究的一维(1D)或准1D结构相比,它提供了更广阔的设计参数空间来控制波长、散射方向和光发射效率。所提出的品质因数>10的系统,通过实现对不对称光散射、放大和前所未有的电磁场局域化的广泛控制,成为增强光与物质相互作用的强大平台。

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