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Integrating plasmonic nanostructures with natural photonic architectures in Pd-modified Morpho butterfly wings for sensitive hydrogen gas sensing

This work reports a bioinspired three-dimensional (3D) heterogeneous structure for optical hydrogen gas (H(2)) sensing. The structure was fabricated by selective modification of the photonic architectures of Morpho butterfly wing scales with Pd nanostrips. The coupling of the plasmonic mode of the P...

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Detalles Bibliográficos
Autores principales: He, Jiaqing, Villa, Nicolò Simone, Luo, Zhen, An, Shun, Shen, Qingchen, Tao, Peng, Song, Chengyi, Wu, Jianbo, Deng, Tao, Shang, Wen
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9086169/
https://www.ncbi.nlm.nih.gov/pubmed/35547683
http://dx.doi.org/10.1039/c8ra05046e
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author He, Jiaqing
Villa, Nicolò Simone
Luo, Zhen
An, Shun
Shen, Qingchen
Tao, Peng
Song, Chengyi
Wu, Jianbo
Deng, Tao
Shang, Wen
author_facet He, Jiaqing
Villa, Nicolò Simone
Luo, Zhen
An, Shun
Shen, Qingchen
Tao, Peng
Song, Chengyi
Wu, Jianbo
Deng, Tao
Shang, Wen
author_sort He, Jiaqing
collection PubMed
description This work reports a bioinspired three-dimensional (3D) heterogeneous structure for optical hydrogen gas (H(2)) sensing. The structure was fabricated by selective modification of the photonic architectures of Morpho butterfly wing scales with Pd nanostrips. The coupling of the plasmonic mode of the Pd nanostrips with the optical resonant mode of the Morpho biophotonic architectures generated a sharp reflectance peak in the spectra of the Pd-modified butterfly wing, as well as enhancement of light–matter interaction in Pd nanostrips. Exposure to H(2) resulted in a rapid reversible increase in the reflectance of the Pd-modified butterfly wing, and the pronounced response of the reflectance was at the wavelength where the plasmonic mode strongly interplayed with the optical resonant mode. Owing to the synergetic effect of Pd nanostrips and biophotonic structures, the bioinspired sensor achieved an H(2) detection limit of less than 10 ppm. Besides, the Pd-modified butterfly wing also exhibited good sensing repeatability. The results suggest that this approach provides a promising optical H(2) sensing scheme, which may also offer the potential design of new nanoengineered structures for diverse sensing applications.
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spelling pubmed-90861692022-05-10 Integrating plasmonic nanostructures with natural photonic architectures in Pd-modified Morpho butterfly wings for sensitive hydrogen gas sensing He, Jiaqing Villa, Nicolò Simone Luo, Zhen An, Shun Shen, Qingchen Tao, Peng Song, Chengyi Wu, Jianbo Deng, Tao Shang, Wen RSC Adv Chemistry This work reports a bioinspired three-dimensional (3D) heterogeneous structure for optical hydrogen gas (H(2)) sensing. The structure was fabricated by selective modification of the photonic architectures of Morpho butterfly wing scales with Pd nanostrips. The coupling of the plasmonic mode of the Pd nanostrips with the optical resonant mode of the Morpho biophotonic architectures generated a sharp reflectance peak in the spectra of the Pd-modified butterfly wing, as well as enhancement of light–matter interaction in Pd nanostrips. Exposure to H(2) resulted in a rapid reversible increase in the reflectance of the Pd-modified butterfly wing, and the pronounced response of the reflectance was at the wavelength where the plasmonic mode strongly interplayed with the optical resonant mode. Owing to the synergetic effect of Pd nanostrips and biophotonic structures, the bioinspired sensor achieved an H(2) detection limit of less than 10 ppm. Besides, the Pd-modified butterfly wing also exhibited good sensing repeatability. The results suggest that this approach provides a promising optical H(2) sensing scheme, which may also offer the potential design of new nanoengineered structures for diverse sensing applications. The Royal Society of Chemistry 2018-09-18 /pmc/articles/PMC9086169/ /pubmed/35547683 http://dx.doi.org/10.1039/c8ra05046e Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
He, Jiaqing
Villa, Nicolò Simone
Luo, Zhen
An, Shun
Shen, Qingchen
Tao, Peng
Song, Chengyi
Wu, Jianbo
Deng, Tao
Shang, Wen
Integrating plasmonic nanostructures with natural photonic architectures in Pd-modified Morpho butterfly wings for sensitive hydrogen gas sensing
title Integrating plasmonic nanostructures with natural photonic architectures in Pd-modified Morpho butterfly wings for sensitive hydrogen gas sensing
title_full Integrating plasmonic nanostructures with natural photonic architectures in Pd-modified Morpho butterfly wings for sensitive hydrogen gas sensing
title_fullStr Integrating plasmonic nanostructures with natural photonic architectures in Pd-modified Morpho butterfly wings for sensitive hydrogen gas sensing
title_full_unstemmed Integrating plasmonic nanostructures with natural photonic architectures in Pd-modified Morpho butterfly wings for sensitive hydrogen gas sensing
title_short Integrating plasmonic nanostructures with natural photonic architectures in Pd-modified Morpho butterfly wings for sensitive hydrogen gas sensing
title_sort integrating plasmonic nanostructures with natural photonic architectures in pd-modified morpho butterfly wings for sensitive hydrogen gas sensing
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9086169/
https://www.ncbi.nlm.nih.gov/pubmed/35547683
http://dx.doi.org/10.1039/c8ra05046e
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