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紧凑型等离子体结构中异常点的电寻址

Electrical addressing of exceptional points in compact plasmonic structures.

作者信息

Jeong Hoon Yeub, Lim Yeonsoo, Han Jungho, An Soo-Chan, Jun Young Chul

机构信息

Department of Materials Science and Engineering, Ulsan National Institute of Science and Technology (UNIST), Ulsan 44919, Republic of Korea.

Graduate School of Semiconductor Materials and Devices Engineering, UNIST, Ulsan 44919, Republic of Korea.

出版信息

Nanophotonics. 2023 Apr 19;12(11):2029-2039. doi: 10.1515/nanoph-2023-0125. eCollection 2023 May.

Abstract

Exceptional points (EPs) are degenerate singularities in a non-Hermitian system that can be induced by controlling the interaction between resonant photonic modes. EPs can enable unusual optical phenomena and significantly enhance the optical sensitivity under small perturbations. However, most studies thus far have been limited to static photonic structures. In this study, we propose and experimentally demonstrate electrically addressable EP in a plasmonic structure. Inspired by optical microcavity studies, we employ a localized spoof plasmon structure that supports circulating plasmonic modes in compact single-resonator geometry. The plasmonic modes are perturbed by an angled metal line, and the interaction between the plasmonic modes is electrically controlled using a varactor. Continuous electrical tuning of the varactor capacitance facilitates simultaneous coalescence of the real and imaginary parts of the eigenfrequency, allowing the direct addressing of EPs. We first investigate the eigenmodes and their coupling in localized plasmonic structures using numerical simulations. We then present experimentally measured spectra that manifest the coalescence of the two resonant modes in both the resonance frequency and linewidth. Electrically addressable EPs in compact plasmonic structures may provide exciting opportunities for highly functional and tunable elements in integrated device platforms.

摘要

例外点(EPs)是非厄米系统中的简并奇点,可通过控制共振光子模式之间的相互作用来诱导产生。例外点能够实现异常的光学现象,并在小扰动下显著提高光学灵敏度。然而,迄今为止,大多数研究都局限于静态光子结构。在本研究中,我们提出并通过实验证明了等离子体结构中的电寻址例外点。受光学微腔研究的启发,我们采用了一种局部仿表面等离子体结构,该结构在紧凑的单谐振器几何结构中支持循环表面等离子体模式。表面等离子体模式受到倾斜金属线的扰动,并且使用变容二极管对表面等离子体模式之间的相互作用进行电控制。变容二极管电容的连续电调谐有助于本征频率的实部和虚部同时合并,从而实现对例外点的直接寻址。我们首先使用数值模拟研究局部表面等离子体结构中的本征模及其耦合。然后,我们展示了实验测量的光谱,这些光谱表明了两个共振模式在共振频率和线宽方面的合并。紧凑等离子体结构中的电寻址例外点可能为集成器件平台中的高功能和可调谐元件提供令人兴奋的机会。

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