Multiple toroidal dipole Fano resonances from quasi-bound states in the continuum in an all-dielectric metasurface

Author:

Sun Fangxin,Fan Xinye123ORCID,Fang Wenjing,Zhao Jingjing,Xiao Wenxing,Li Chuanchuan1,Wei Xin1,Tao Jifang4,Wang Yanling5,Kumar Santosh6ORCID

Affiliation:

1. College of institute of Semiconductors, Chinese Academy of Sciences

2. Shandong Provincial Key Laboratory of Optical Communication Science and Technology

3. Liaocheng Key Laboratory of Industrial-Internet Research and Application

4. Shandong University

5. Ningbo Xingke Metal Materials Co., Ltd

6. Department of Electronics and Communication Engineering

Abstract

In this paper, a highly sensitive sensor consisting of a silicon nanorod and symmetric rings (SNSR) is presented. Theoretically, three Fano resonances with high Q-factors are excited in the near-infrared range by breaking the symmetry structure based on quasi-bound states in the continuum (Q-BICs). The electromagnetic near-field analysis confirms that the resonances are mainly controlled by toroidal dipole (TD) resonance. The structure is optimized by adjusting different geometrical parameters, and the maximum Q-factor of the Fano resonances can reach 7427. To evaluate the sensing performance of the structure, the sensitivity and the figure of merit (FOM) are calculated by adjusting the environmental refractive index: the maximum sensitivity of 474 nm/RIU and the maximum FOM of 3306 RIU-1. The SNSR can be fabricated by semiconductor-compatible processes, which is experimentally evaluated for changes in transmission spectra at different solution concentrations. The results show that the sensitivity and the Q-factor of the designed metasurface can reach 295 nm/RIU and 850, while the FOM can reach 235 RIU-1. Therefore, the metasurface of SNSR is characterized by high sensitivity and multi-wavelength sensing, which are current research hotspots in the field of optics and can be applied to biomedical sensing and multi-target detection.

Funder

Youth Innovation Team Project for Talent Introduction and Cultivation in Universities of Shandong Province

Natural Science Foundation of Shandong Province

Publisher

Optica Publishing Group

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