Key Laboratory of Atmospheric Optics, Anhui Institute of Optics and Fine Mechanics, Hefei Institutes of Physical Science, Chinese Academy of Sciences, Hefei 230031, China.
University of Science and Technology of China, Hefei 230026, China.
Biosensors (Basel). 2022 May 6;12(5):306. doi: 10.3390/bios12050306.
In this article, a non-through metal-insulator-metal (MIM) waveguide that can excite fivefold Fano resonances is reported. The Fano resonances are obtained by the interaction between the modes excited by the square split-ring resonator (SSRC) and the bus waveguide. After a detailed analysis of the transmission characteristics and magnetic field strength of the structure using the finite element method (FEM), it was found that the independent tuning of Fano resonance wavelength and transmittance can be achieved by adjusting the geometric parameters of SSRC. In addition, after optimizing the geometric parameters, the refractive index sensing sensitivity (S) and figure of merit (FOM) of the structure can be optimal, which are 1290.2 nm/RIU and 3.6 × 10, respectively. Additionally, the annular cavity of the MIM waveguide structure can also be filled with biomass solution to act as a biosensor. On this basis, the structure can be produced for optical refractive index sensing in the biological, micro and nano fields.
本文报道了一种能够激发五重 Fano 共振的非贯穿金属-绝缘体-金属(MIM)波导。通过方形开口环谐振器(SSRC)和母线波导激发的模式之间的相互作用获得了 Fano 共振。通过有限元方法(FEM)对结构的传输特性和磁场强度进行了详细分析,发现通过调整 SSRC 的几何参数可以实现 Fano 共振波长和透过率的独立调节。此外,在优化几何参数后,结构的折射率传感灵敏度(S)和品质因数(FOM)可以达到最优,分别为 1290.2nm/RIU 和 3.6×10。此外,MIM 波导结构的环形腔也可以填充生物质溶液作为生物传感器。在此基础上,该结构可用于生物、微纳领域的光学折射率传感。