Freezing and thawing of cells on a microfluidic device: a simple and time...
Ultra-stable and low-divergence high-power antimonide light emitters with...
Demonstration of a 700 W x 2 ports single-stage all-fiber nanosecond ampl...
High-performance TM-pass polarizer based on anti-symmetric Bragg gratings
Robust and Sparse Least Square Regression for Finger Vein and Finger Knuc...
Feedback insensitivity in a self-chaotic microcavity laser
Strain-induced topological phase transition in graphene nanoribbons
Nonlinear Dynamics in a Solitary Microlaser Based on the Interaction Betw...
Pump-Free and Reconfigurable All-Optical Modulation Format Conversion for...
High Sensitivity Optical MEMS Accelerometer Based on a Metal Fabry-Prot M...
官方微信
友情链接

High-Performance All-Dielectric Metasurface for Quadruple Fano Resonance-Induced Biosensing Applications in the Near-Infrared Range

2024-04-01


Wang, Dandan; Fan, Xinye; Fang, Wenjing; Du, Mengcheng; Sun, Qinghe; Niu, Huijuan; Li, Chuanchuan; Wei, Xin; Li, Mingxin; Chen, Baoxi; Kumar, Santosh Source: IEEE Sensors Journal, p 1-1, 2024;

Abstract:

In this paper, an all-dielectric metasurface comprised of asymmetric dimers in the near-infrared range is presented, and a comprehensive analysis of the quadruple Fano resonances based on the theory of bound states in the continuum (BIC) is conducted. The electromagnetic field distribution and transmission spectral profile are simulated and investigated using the finite-difference time-domain (FDTD) method. Theoretical analysis of the electromagnetic distribution properties at the resonance wavelengths shows that the four Fano resonances are induced by toroidal dipole (TD), electric quadrupole (EQ), and magnetic dipole (MD), respectively. In terms of the transmission spectrum, we systematically investigate the spectral characteristics of the proposed structure under different parameters. The flexibility to control the Fano resonances is demonstrated by adjusting the geometric parameters of the structure. Furthermore, we find that the Fano resonances are sensitive to the surrounding refractive index, the temperature, and the polarization direction of the incident light. And thus the structure exhibits broad application potential in refractive index sensing, temperature sensing, and bidirectional optical switches. Numerical results show remarkable performance in refractive index sensor, with a maximum sensitivity (S) of 508 nm/RIU, a figure of merit (FOM) of 6771 RIU, and an extraordinarily high Q factor of 19474. The temperature sensor achieves a sensitivity of 34 pm/°C. In addition, the bidirectional optical switch can be realized by adjusting the polarization direction of the incident light. The suggested metasurface offers new possibilities for designing and optimizing high-performance sensors in the field of biomedical applications.

IEEE




关于我们
下载视频观看
联系方式
通信地址

北京市海淀区清华东路甲35号(林大北路中段) 北京912信箱 (100083)

电话

010-82304210/010-82305052(传真)

E-mail

semi@semi.ac.cn

交通地图
版权所有 中国科学院半导体研究所

备案号:京ICP备05085259-1号 京公网安备110402500052 中国科学院半导体所声明