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Plasmonic MIM waveguide based FR sensors for refractive index sensing of human hemoglobin

Publication Type : Journal Article

Publisher : Elsevier BV

Source : Photonics and Nanostructures - Fundamentals and Applications

Url : https://doi.org/10.1016/j.photonics.2024.101325

Keywords : Plasmonic waveguide, Fano resonance, Electromagnetic-induced transparency, Coupled mode theory, Finite difference time domain, Hemoglobin

Campus : Faridabad

School : School of Artificial Intelligence

Year : 2024

Abstract : Fano resonance (FR) is a universal phenomenon that is used to attain electromagnetic-induced transparency (EIT), high absorption and sensitivity, and low-power photonic devices. This work presents dual FR refractive index (RI) sensor models on a plasmonic metal-insulator-metal (MIM) waveguide system. The FR phenomenon is attained by including circular and elliptic nanorod defects in the bus waveguides. The resonances originate from the defect's narrow discreteness and the rectangular resonator's broad state. Analytical methods such as finite difference time domain (FDTD) and multimode interference coupled mode theory are adopted to analyze the FRs. The shapes of the Fano line and resonance peak amplitude can be tuned independently by controlling the diameter of the defects, the separation between the defects, and the coupling (between the resonator and the bus waveguide) distance. Moreover, the proposed structures detect the RI (human hemoglobin) variation in the bus waveguide and resonator. The obtained results with circular nanorod defect verify the autocorrelation coefficient of 99.92 %, ensuring the device's linearity and high performance. However, an autocorrelation of 99.7 % is attained by using two elliptic nanorod defects.

Cite this Research Publication : Lokendra Singh, Bukya Balaji, Yogesh Tripathi, Roshan Kumar, Sameer Yadav, Plasmonic MIM waveguide based FR sensors for refractive index sensing of human hemoglobin, Photonics and Nanostructures - Fundamentals and Applications, Elsevier BV, 2024, https://doi.org/10.1016/j.photonics.2024.101325

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