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Palladium-coated narrow groove plasmonic nanogratings for highly sensitive hydrogen sensing

In this paper, we propose novel plasmonic hydrogen sensors based on palladium coated narrow-groove plasmonic nanogratings for sensing of hydrogen gas at visible and near-infrared wavelengths. These narrow-groove plasmonic nanogratings allow the incident light to be coupled directly into plasmonic wa...

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Autores principales: Subramanian, Senthil, Kumar, Kamal, Dhawan, Anuj
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9049174/
https://www.ncbi.nlm.nih.gov/pubmed/35492634
http://dx.doi.org/10.1039/c9ra08101a
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author Subramanian, Senthil
Kumar, Kamal
Dhawan, Anuj
author_facet Subramanian, Senthil
Kumar, Kamal
Dhawan, Anuj
author_sort Subramanian, Senthil
collection PubMed
description In this paper, we propose novel plasmonic hydrogen sensors based on palladium coated narrow-groove plasmonic nanogratings for sensing of hydrogen gas at visible and near-infrared wavelengths. These narrow-groove plasmonic nanogratings allow the incident light to be coupled directly into plasmonic waveguide modes thereby alleviating the need for bulky coupling methods to be employed. We carried out numerical simulations of the palladium coated narrow-groove plasmonic nanogratings using rigorous coupled wave analysis (RCWA). When palladium is exposed to varying concentrations of hydrogen gas, palladium undergoes phase transition to palladium hydride (PdH(x)), such that there are different atomic ratios ‘x’ (H/Pd) of hydrogen present in the palladium hydride (PdH(x)) depending on the concentration of the hydrogen gas. RCWA simulations were performed to obtain the reflectance spectral response of the Pd coated nanogratings in both the absence and presence of hydrogen, for various atomic ratios ‘x’ (x ∼ 0.125 to 0.65) in palladium hydride (PdH(x)). The results of the RCWA simulations showed that as the dielectric permittivity of the palladium (Pd) thin film layers in between the adjacent walls of the plasmonic nanogratings changes upon exposure to hydrogen, significant shifts in the plasmon resonance wavelength (maximum Δλ being ∼80 nm for an increase in the value of the atomic ratio ‘x’ from 0 to 0.65) as well as changes in the differential reflection spectra are observed. The structural parameters of these Pd coated narrow groove nanogratings—such as the nanograting height, gap between the nanograting walls, thickness of the palladium layer, periodicity of the nanogratings—were varied to maximize the shift in the plasmon resonance wavelength as well as the differential reflectance when these nanostructures are exposed to different concentrations of hydrogen (i.e. for different atomic ratios ‘x’ in PdH(x)).
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spelling pubmed-90491742022-04-29 Palladium-coated narrow groove plasmonic nanogratings for highly sensitive hydrogen sensing Subramanian, Senthil Kumar, Kamal Dhawan, Anuj RSC Adv Chemistry In this paper, we propose novel plasmonic hydrogen sensors based on palladium coated narrow-groove plasmonic nanogratings for sensing of hydrogen gas at visible and near-infrared wavelengths. These narrow-groove plasmonic nanogratings allow the incident light to be coupled directly into plasmonic waveguide modes thereby alleviating the need for bulky coupling methods to be employed. We carried out numerical simulations of the palladium coated narrow-groove plasmonic nanogratings using rigorous coupled wave analysis (RCWA). When palladium is exposed to varying concentrations of hydrogen gas, palladium undergoes phase transition to palladium hydride (PdH(x)), such that there are different atomic ratios ‘x’ (H/Pd) of hydrogen present in the palladium hydride (PdH(x)) depending on the concentration of the hydrogen gas. RCWA simulations were performed to obtain the reflectance spectral response of the Pd coated nanogratings in both the absence and presence of hydrogen, for various atomic ratios ‘x’ (x ∼ 0.125 to 0.65) in palladium hydride (PdH(x)). The results of the RCWA simulations showed that as the dielectric permittivity of the palladium (Pd) thin film layers in between the adjacent walls of the plasmonic nanogratings changes upon exposure to hydrogen, significant shifts in the plasmon resonance wavelength (maximum Δλ being ∼80 nm for an increase in the value of the atomic ratio ‘x’ from 0 to 0.65) as well as changes in the differential reflection spectra are observed. The structural parameters of these Pd coated narrow groove nanogratings—such as the nanograting height, gap between the nanograting walls, thickness of the palladium layer, periodicity of the nanogratings—were varied to maximize the shift in the plasmon resonance wavelength as well as the differential reflectance when these nanostructures are exposed to different concentrations of hydrogen (i.e. for different atomic ratios ‘x’ in PdH(x)). The Royal Society of Chemistry 2020-01-24 /pmc/articles/PMC9049174/ /pubmed/35492634 http://dx.doi.org/10.1039/c9ra08101a Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Subramanian, Senthil
Kumar, Kamal
Dhawan, Anuj
Palladium-coated narrow groove plasmonic nanogratings for highly sensitive hydrogen sensing
title Palladium-coated narrow groove plasmonic nanogratings for highly sensitive hydrogen sensing
title_full Palladium-coated narrow groove plasmonic nanogratings for highly sensitive hydrogen sensing
title_fullStr Palladium-coated narrow groove plasmonic nanogratings for highly sensitive hydrogen sensing
title_full_unstemmed Palladium-coated narrow groove plasmonic nanogratings for highly sensitive hydrogen sensing
title_short Palladium-coated narrow groove plasmonic nanogratings for highly sensitive hydrogen sensing
title_sort palladium-coated narrow groove plasmonic nanogratings for highly sensitive hydrogen sensing
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9049174/
https://www.ncbi.nlm.nih.gov/pubmed/35492634
http://dx.doi.org/10.1039/c9ra08101a
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