诺共振
时域有限差分法
谐振器
光学
共振(粒子物理)
散射矩阵法
耦合模理论
法诺平面
散射
材料科学
反射(计算机编程)
光子学
慢光
联轴节(管道)
光子晶体
光电子学
物理
折射率
计算机科学
等离子体子
粒子物理学
数学
冶金
经典力学
程序设计语言
纯数学
麦克斯韦方程组
作者
Jun Wang,Jie Lin,Peng Jin,Shutian Liu,Keya Zhou
出处
期刊:Optics Express
[Optica Publishing Group]
日期:2023-08-29
卷期号:31 (19): 31587-31587
被引量:14
摘要
Fano resonance is considered to be a promising approach for integrated sensing. However, achieving and controlling Fano resonance lineshapes on ultra-compact chips remains a challenge. In this article, we propose a theoretic model based on the transfer matrix method (TMM) to quantitatively interpret the impact of a micro-reflective unit (MRU) etched in the straight waveguide of a microring resonator (MRR). Numerical calculations and FDTD simulations indicate that the size and position of the MRU can be used to control the Fano resonance lineshape. Since the MRU is etched in the coupling region, the reflection caused by the MRU will significantly enhance the intensity of the counter-clockwise (CCW) mode in the microring. When applied to a single nanoparticle sensing, clockwise (CW) and CCW modes will couple due to a single nanoparticles or rough cavity walls, resulting in a sharp shift and split of the Fano lineshape. The proposed model for single nanoparticle sensing is described by the scattering matrix, and the calculations show a well matches with FDTD simulations. The results show that the model proposed in this paper provides a new theoretical basis for controlling Fano resonance lineshape and presents a new approach for the integrated sensing of silicon photonic devices with high sensitivity.
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