Angular interrogation analysis of metal-dielectric grating metasurfaces for efficient tuning of surface plasmons

Abstract Plasmonic nanostructures enable tunable control of light emission, propagation, and confinement through engineered resonances. This study presents a comprehensive analysis of angular interrogation in one-dimensional (1D) metal-dielectric grating metasurfaces by systematically tuning opto-ge...

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Main Authors: Shafeek Abdul Samad, Nityanand Kumawat, Priyamvada Venugopalan, Sunil Kumar
Format: Article
Language:English
Published: Nature Portfolio 2025-06-01
Series:Scientific Reports
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Online Access:https://doi.org/10.1038/s41598-025-04353-1
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author Shafeek Abdul Samad
Nityanand Kumawat
Priyamvada Venugopalan
Sunil Kumar
author_facet Shafeek Abdul Samad
Nityanand Kumawat
Priyamvada Venugopalan
Sunil Kumar
author_sort Shafeek Abdul Samad
collection DOAJ
description Abstract Plasmonic nanostructures enable tunable control of light emission, propagation, and confinement through engineered resonances. This study presents a comprehensive analysis of angular interrogation in one-dimensional (1D) metal-dielectric grating metasurfaces by systematically tuning opto-geometric parameters to tailor surface plasmon resonance (SPR) characteristics. We investigate the influence of large grating modulation depths (d > 100 nm) and a broad range of grating periods (300–2000 nm) on zeroth-order angular reflection over an angular span of 0° to 89°. Numerical predictions are validated through experimental characterization using commercial optical-disc gratings coated with a 50 nm gold film. We analyze the evolution of SPR band characteristics with grating period and depth, identifying the emergence of both broadband and narrowband angular resonances. Finite Element Method (FEM) simulations reveal reflection dip closures at grating periods of 925 nm and 1250 nm for excitation wavelengths of 633 nm and 850 nm, respectively. The optimized grating configurations yield high-contrast, narrow reflection dips with angular full-width-at-half-maximum (FWHM) < 1.5°, resulting in an order-of-magnitude improvement in the figure of merit (FOM). The originality and impact of this study lie in its systematic and extensive analysis of deep metal-dielectric grating metasurfaces to attain narrow bandwidths, effectively advancing beyond the conventional practice of using shallow modulation depths. Importantly, the results reveal a highly tolerant design space that supports narrowband responses in angular interrogation of 1D grating metasurfaces, enabling scalable, tunable, and high-resolution plasmonic device development across broader geometric and operational regimes than previously achieved.
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spelling doaj-art-66e103f9f5f64f598bcda5aa895605fc2025-08-20T02:30:46ZengNature PortfolioScientific Reports2045-23222025-06-0115111510.1038/s41598-025-04353-1Angular interrogation analysis of metal-dielectric grating metasurfaces for efficient tuning of surface plasmonsShafeek Abdul Samad0Nityanand Kumawat1Priyamvada Venugopalan2Sunil Kumar3Division of Engineering, New York University Abu DhabiDivision of Engineering, New York University Abu DhabiDivision of Engineering, New York University Abu DhabiDivision of Engineering, New York University Abu DhabiAbstract Plasmonic nanostructures enable tunable control of light emission, propagation, and confinement through engineered resonances. This study presents a comprehensive analysis of angular interrogation in one-dimensional (1D) metal-dielectric grating metasurfaces by systematically tuning opto-geometric parameters to tailor surface plasmon resonance (SPR) characteristics. We investigate the influence of large grating modulation depths (d > 100 nm) and a broad range of grating periods (300–2000 nm) on zeroth-order angular reflection over an angular span of 0° to 89°. Numerical predictions are validated through experimental characterization using commercial optical-disc gratings coated with a 50 nm gold film. We analyze the evolution of SPR band characteristics with grating period and depth, identifying the emergence of both broadband and narrowband angular resonances. Finite Element Method (FEM) simulations reveal reflection dip closures at grating periods of 925 nm and 1250 nm for excitation wavelengths of 633 nm and 850 nm, respectively. The optimized grating configurations yield high-contrast, narrow reflection dips with angular full-width-at-half-maximum (FWHM) < 1.5°, resulting in an order-of-magnitude improvement in the figure of merit (FOM). The originality and impact of this study lie in its systematic and extensive analysis of deep metal-dielectric grating metasurfaces to attain narrow bandwidths, effectively advancing beyond the conventional practice of using shallow modulation depths. Importantly, the results reveal a highly tolerant design space that supports narrowband responses in angular interrogation of 1D grating metasurfaces, enabling scalable, tunable, and high-resolution plasmonic device development across broader geometric and operational regimes than previously achieved.https://doi.org/10.1038/s41598-025-04353-1Surface plasmon resonanceMetasurfacesGrating couplingSinusoidal gratingAngular interrogationWavelength interrogation
spellingShingle Shafeek Abdul Samad
Nityanand Kumawat
Priyamvada Venugopalan
Sunil Kumar
Angular interrogation analysis of metal-dielectric grating metasurfaces for efficient tuning of surface plasmons
Scientific Reports
Surface plasmon resonance
Metasurfaces
Grating coupling
Sinusoidal grating
Angular interrogation
Wavelength interrogation
title Angular interrogation analysis of metal-dielectric grating metasurfaces for efficient tuning of surface plasmons
title_full Angular interrogation analysis of metal-dielectric grating metasurfaces for efficient tuning of surface plasmons
title_fullStr Angular interrogation analysis of metal-dielectric grating metasurfaces for efficient tuning of surface plasmons
title_full_unstemmed Angular interrogation analysis of metal-dielectric grating metasurfaces for efficient tuning of surface plasmons
title_short Angular interrogation analysis of metal-dielectric grating metasurfaces for efficient tuning of surface plasmons
title_sort angular interrogation analysis of metal dielectric grating metasurfaces for efficient tuning of surface plasmons
topic Surface plasmon resonance
Metasurfaces
Grating coupling
Sinusoidal grating
Angular interrogation
Wavelength interrogation
url https://doi.org/10.1038/s41598-025-04353-1
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AT priyamvadavenugopalan angularinterrogationanalysisofmetaldielectricgratingmetasurfacesforefficienttuningofsurfaceplasmons
AT sunilkumar angularinterrogationanalysisofmetaldielectricgratingmetasurfacesforefficienttuningofsurfaceplasmons