Complex band structure and bound states in the continuum: a unified theoretical framework

物理 布洛赫波 束缚态 电子能带结构 光子晶体 散射 复平面 带隙 平面波 复杂系统 波传播 统计物理学 量子力学 计算物理学 物理系统 基础(线性代数) 激光线宽 经典力学 理论物理学 能量(信号处理) 数值分析 平面(几何) 频带 布洛赫振荡
作者
Jie Liu,Ziyun Peng,Qianju Song,Ang Chen,Le Yang,Chunxiong Zheng,DeZhuan Han
出处
期刊:Reports on Progress in Physics [IOP Publishing]
卷期号:89 (3): 037901-037901
标识
DOI:10.1088/1361-6633/ae4d03
摘要

Band structure analysis is central to understanding wave propagation in periodic media; however, it becomes challenging in open systems owing to energy leakage. Photonic crystal (PhC) slabs exemplify such systems, featuring periodicity in thex-yplane and finite extent in thez-direction, and supporting diverse guided-mode resonances whose interactions give rise to phenomena such as bound states in the continuum (BICs), exceptional points (EPs), and circular polarisation states. Although numerical simulations can reveal these effects, effective non-Hermitian Hamiltonians are often employed to elucidate the underlying physical mechanisms. This approach, however, relies on manually selected resonant modes and may suffer from basis incompleteness. Here, a systematic first-principles approach is presented to derive the complex band structure. The minimal channels in the scattering matrix, either open or closed, are determined by the number of propagating bulk Bloch waves. The interactions between these waves fully reveal the complex band structure. For instance, two Bloch waves predict the leading-order imaginary frequencyω''and identify accidental BICs, each associated with a dual Fabry-Pérot mode, whereas three waves reveal robust Friedrich-Wintgen and symmetry-protected BICs together with the associated linewidth behaviours. Orthogonally polarised waves are further incorporated to characterise far-field polarisation and EPs. When extended to a two-dimensional periodic structure, this framework accurately predictsω'', encompasses all known BICs, and tracks their evolution with system parameters. Overall, this first-principles approach provides a unified foundation for studying complex band structure and facilitates the exploration of light confinement in periodic media.
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