Design and numerical evaluation of a high sensitivity plasmonic biosensor based on MISM nanoring for versatile virus detection

Abstract Recent advancements in nanotechnology have positioned plasmonic optical sensors as powerful tools for biosensing applications. These sensors utilize the interaction of electromagnetic waves with metallic nanostructures to enable rapid, label-free detection of biological analytes. In this st...

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Main Authors: Ali Khodaie, Yousef Rafighirani, Hamid Heidarzadeh, Javad Javidan
Format: Article
Language:English
Published: Nature Portfolio 2025-07-01
Series:Scientific Reports
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Online Access:https://doi.org/10.1038/s41598-025-07501-9
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author Ali Khodaie
Yousef Rafighirani
Hamid Heidarzadeh
Javad Javidan
author_facet Ali Khodaie
Yousef Rafighirani
Hamid Heidarzadeh
Javad Javidan
author_sort Ali Khodaie
collection DOAJ
description Abstract Recent advancements in nanotechnology have positioned plasmonic optical sensors as powerful tools for biosensing applications. These sensors utilize the interaction of electromagnetic waves with metallic nanostructures to enable rapid, label-free detection of biological analytes. In this study, we propose and optimize a plasmonic optical biosensor based on nanohole arrays and metal–insulator–semiconductor–metal (MISM) nanorings for detecting various viruses. The sensor structure incorporates gold and silver layers on a silver substrate, with the nanohole and nanoring elements engineered to enhance sensitivity to refractive index variations in the surrounding medium. The finite-difference time-domain (FDTD) method evaluates the sensor’s performance, which numerically solves Maxwell’s equations for frequency-dependent optical behavior. Simulation results demonstrate the sensor’s capability to detect minute refractive index changes induced by viruses such as HSV, HIV-1, Influenza A, and M13 bacteriophage. The design achieves a high sensitivity of 811 nm/RIU, attributed to Fano resonance effects and optimized geometrical parameters. Furthermore, the sensor exhibits a figure of merit (FOM) of 3.38 RIU⁻¹ and a limit of detection (LoD) of 0.268 RIU, outperforming many previously reported plasmonic biosensors. These findings underscore the potential of nanohole–MISM nanoring-based plasmonic sensors for rapid, label-free, and highly sensitive virus detection. With further development in structural design and fabrication techniques, this platform could be widely applicable in medical diagnostics and point-of-care biosensing.
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spelling doaj-art-3e22afcbb7a64adca7462b82cc573ffe2025-08-20T03:03:24ZengNature PortfolioScientific Reports2045-23222025-07-0115111010.1038/s41598-025-07501-9Design and numerical evaluation of a high sensitivity plasmonic biosensor based on MISM nanoring for versatile virus detectionAli Khodaie0Yousef Rafighirani1Hamid Heidarzadeh2Javad Javidan3Department of Electrical and Computer Engineering, University of Mohaghegh ArdabiliDepartment of Electrical and Computer Engineering, University of Mohaghegh ArdabiliDepartment of Electrical and Computer Engineering, University of Mohaghegh ArdabiliDepartment of Electrical and Computer Engineering, University of Mohaghegh ArdabiliAbstract Recent advancements in nanotechnology have positioned plasmonic optical sensors as powerful tools for biosensing applications. These sensors utilize the interaction of electromagnetic waves with metallic nanostructures to enable rapid, label-free detection of biological analytes. In this study, we propose and optimize a plasmonic optical biosensor based on nanohole arrays and metal–insulator–semiconductor–metal (MISM) nanorings for detecting various viruses. The sensor structure incorporates gold and silver layers on a silver substrate, with the nanohole and nanoring elements engineered to enhance sensitivity to refractive index variations in the surrounding medium. The finite-difference time-domain (FDTD) method evaluates the sensor’s performance, which numerically solves Maxwell’s equations for frequency-dependent optical behavior. Simulation results demonstrate the sensor’s capability to detect minute refractive index changes induced by viruses such as HSV, HIV-1, Influenza A, and M13 bacteriophage. The design achieves a high sensitivity of 811 nm/RIU, attributed to Fano resonance effects and optimized geometrical parameters. Furthermore, the sensor exhibits a figure of merit (FOM) of 3.38 RIU⁻¹ and a limit of detection (LoD) of 0.268 RIU, outperforming many previously reported plasmonic biosensors. These findings underscore the potential of nanohole–MISM nanoring-based plasmonic sensors for rapid, label-free, and highly sensitive virus detection. With further development in structural design and fabrication techniques, this platform could be widely applicable in medical diagnostics and point-of-care biosensing.https://doi.org/10.1038/s41598-025-07501-9Optical biosensorSensitivityVarious virusesNanoholesMetal-insulated-semiconductor-metal (MISM) nanorings
spellingShingle Ali Khodaie
Yousef Rafighirani
Hamid Heidarzadeh
Javad Javidan
Design and numerical evaluation of a high sensitivity plasmonic biosensor based on MISM nanoring for versatile virus detection
Scientific Reports
Optical biosensor
Sensitivity
Various viruses
Nanoholes
Metal-insulated-semiconductor-metal (MISM) nanorings
title Design and numerical evaluation of a high sensitivity plasmonic biosensor based on MISM nanoring for versatile virus detection
title_full Design and numerical evaluation of a high sensitivity plasmonic biosensor based on MISM nanoring for versatile virus detection
title_fullStr Design and numerical evaluation of a high sensitivity plasmonic biosensor based on MISM nanoring for versatile virus detection
title_full_unstemmed Design and numerical evaluation of a high sensitivity plasmonic biosensor based on MISM nanoring for versatile virus detection
title_short Design and numerical evaluation of a high sensitivity plasmonic biosensor based on MISM nanoring for versatile virus detection
title_sort design and numerical evaluation of a high sensitivity plasmonic biosensor based on mism nanoring for versatile virus detection
topic Optical biosensor
Sensitivity
Various viruses
Nanoholes
Metal-insulated-semiconductor-metal (MISM) nanorings
url https://doi.org/10.1038/s41598-025-07501-9
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AT hamidheidarzadeh designandnumericalevaluationofahighsensitivityplasmonicbiosensorbasedonmismnanoringforversatilevirusdetection
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