Fano Resonance Based on Coupling Between Nanoring Resonator and MIM Waveguide for Refractive Index Sensor

被引:12
|
作者
Mohamed, Zain Elabdeen A. [1 ]
Taya, Sofyan A. [2 ]
Almawgani, Abdulkarem H. M. [3 ]
Hindi, Ayman Taher [3 ]
机构
[1] Assiut Univ, Fac Sci, Phys Dept, Assiut 71516, Egypt
[2] Islamic Univ Gaza, Phys Dept, POB 108, Gaza, Palestine
[3] Najran Univ, Coll Engn, Elect Engn Dept, Najran, Saudi Arabia
关键词
Plasmonic sensors; Nanoring resonators; Refractive index; Optical sensors; PHOTONIC CRYSTAL; RING-RESONATOR; FABRICATION; FILTER;
D O I
10.1007/s11468-023-02009-2
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Fano resonance is a sharp and asymmetric spectral feature that can be used for refractive index sensing. In this paper, we propose a Fano resonance sensor based on the coupling between a nanoring resonator and a metal-insulator-metal (MIM) waveguide. The nanoring resonator is fabricated in the middle of the MIM waveguide, and the two structures are coupled with high-field confinement. The transmission spectrum of the coupled structure shows a Fano resonance, which is sensitive to the refractive index of the surrounding medium. The sensitivity of the sensor is estimated to be 1700 nm/RIU, which is comparable to the sensitivities of other Fano resonance sensors. In addition, the designed sensor achieves the first-ever FOM and Q factor values of 4300.25 RIU-1 and 4310, respectively, for plasmonic MIM sensors. The proposed sensor is simple to fabricate and can be used for a wide range of refractive index sensing applications.
引用
收藏
页码:567 / 575
页数:9
相关论文
共 50 条
  • [1] Fano Resonance Based on Coupling Between Nanoring Resonator and MIM Waveguide for Refractive Index Sensor
    Zain Elabdeen A. Mohamed
    Sofyan A. Taya
    Abdulkarem H. M. Almawgani
    Ayman Taher Hindi
    Plasmonics, 2024, 19 : 567 - 575
  • [2] Fano Resonance in the Plasmonic Structure of MIM Waveguide with r-Shaped Resonator for Refractive Index Sensor
    Rohimah, Siti
    Tian, He
    Wang, Jinfang
    Chen, Jianfeng
    Li, Jina
    Liu, Xing
    Cui, Jingang
    Xu, Qiang
    Hao, Yu
    PLASMONICS, 2022, 17 (04) : 1681 - 1689
  • [3] Fano Resonance in the Plasmonic Structure of MIM Waveguide with r-Shaped Resonator for Refractive Index Sensor
    Siti Rohimah
    He Tian
    Jinfang Wang
    Jianfeng Chen
    Jina Li
    Xing Liu
    Jingang Cui
    Qiang Xu
    Yu Hao
    Plasmonics, 2022, 17 : 1681 - 1689
  • [4] Optical refractive index sensor with Fano resonance based on original MIM waveguide structure
    Zhu, Jun
    Wu, Changsong
    RESULTS IN PHYSICS, 2021, 21
  • [5] MIM waveguide refractive index sensor with graphene enhanced three-ring nested resonator Fano resonance
    Qi, Yunping
    Wu, Qilong
    Su, Mingrui
    Li, Hao
    Wang, Xiangxian
    PHYSICA SCRIPTA, 2024, 99 (07)
  • [6] Refractive Index Sensor Based on Fano Resonance in Microcapillary Resonator
    Song, Yuejiang
    Peng, Yunchong
    Miao, Yadong
    Li, Mi
    Xiang, Yu
    Lu, Yu
    Chen, Qiang
    2017 CONFERENCE ON LASERS AND ELECTRO-OPTICS (CLEO), 2017,
  • [7] A MIM Waveguide Structure of a High-Performance Refractive Index and Temperature Sensor Based on Fano Resonance
    Liu, Pengwei
    Yan, Shubin
    Ren, Yifeng
    Zhang, Xiaoyu
    Li, Tingsong
    Wu, Xiushan
    Shen, Lifang
    Hua, Ertian
    APPLIED SCIENCES-BASEL, 2021, 11 (22):
  • [8] Tunable Fano resonance in plasmonic MIM waveguide with P-shaped resonator for refractive index sensing
    Qi, Yunping
    Ding, Jinghui
    Zhang, Ting
    Liu, Weiming
    Wang, Liyuan
    Wang, Xiangxian
    EPL, 2021, 134 (06)
  • [9] High FOM fano resonance refractive-index sensor based on a baffled MIM waveguide coupled with an inverted L-Shaped resonator
    Chen, Tianshan
    Gao, Jiayao
    Wang, Xiangxian
    Chen, Yizhen
    Yang, Hua
    Qi, Yunping
    PHYSICA SCRIPTA, 2025, 100 (01)
  • [10] Refractive Index Sensor MIM Based Waveguide Coupled with a Slotted Side Resonator
    Achi, Salah E.
    Hocini, Abdesselam
    Salah, Hocine B.
    Harhouz, Ahlam
    PROGRESS IN ELECTROMAGNETICS RESEARCH M, 2020, 96 : 147 - 156