Ko Yeong Hwan, Lee Kyu Jin, Simlan Fairooz Abdullah, Magnusson Robert
Department of Electrical Engineering, University of Texas at Arlington, Arlington, TX 76019, USA.
Nanophotonics. 2023 Jan 4;12(2):263-272. doi: 10.1515/nanoph-2022-0608. eCollection 2023 Jan.
Fundamental effects in nanophotonic resonance systems focused on singular states and their properties are presented. Strongly related to lattice geometry and material composition, there appear resonant bright channels and non-resonant dark channels in the spectra. The bright state corresponds to high reflectivity guided-mode resonance (GMR) whereas the dark channel represents a bound state in the continuum (BIC). Even in simple systems, singular states with tunable bandwidth appear as isolated spectral lines that are widely separated from other resonance features. Under moderate lattice modulation, there ensues leaky-band metamorphosis, merging modal bands and resulting in offset dark states and reflective BICs along with transmissive BICs within a high-reflectance wideband. Rytov-type effective medium theory (EMT) is shown to be a powerful means to describe, formulate, and understand the collective GMR/BIC fundamentals in resonant photonic systems. Particularly, the discarded Rytov analytical solution for asymmetric fields is shown here to predict the dark BIC states essentially exactly for considerable modulation levels. The propagation constant of an equivalent EMT homogeneous film provides a quantitative evaluation of the eminent, oft-cited embedded BIC eigenvalue. The work concludes with experimental verification of key effects.
本文介绍了纳米光子共振系统中聚焦于奇异态及其特性的基本效应。这些效应与晶格几何结构和材料成分密切相关,光谱中出现了共振亮通道和非共振暗通道。亮态对应于高反射率的导模共振(GMR),而暗通道代表连续谱中的束缚态(BIC)。即使在简单系统中,具有可调带宽的奇异态也表现为与其他共振特征广泛分离的孤立谱线。在适度的晶格调制下,会发生泄漏带变态,合并模态带,并在高反射宽带内产生偏移暗态和反射型BIC以及透射型BIC。瑞托夫型有效介质理论(EMT)被证明是描述、公式化和理解共振光子系统中集体GMR/BIC基本原理的有力手段。特别是,这里展示了针对非对称场的被舍弃的瑞托夫解析解,对于相当大的调制水平,它能基本精确地预测暗BIC态。等效EMT均匀薄膜的传播常数对著名的、常被引用的嵌入BIC本征值提供了定量评估。本文最后通过实验验证了关键效应。