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Enhancing Photoluminescence Intensity and Spectral Bandwidth of Hybrid Nanofiber/Thin-Film Multilayer Tm(3+)-Doped SiO(2)–HfO(2)

Multilayering of optical thin films is widely used for a range of purposes in photonic technology, but the development of nanofiber structures that can outperform thin films and nanoparticles in optical applications cannot simply be disregarded. Hybrid structures composed of Tm(3+)-doped SiO(2)–HfO(...

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Autores principales: Zulfikri, Nurul Izzati Zafirah, Ibrahim, Abdel-Baset M. A., Mustaffa, Nur Amalina, Mohamad Yunus, Rozan, Ahmad Kamil, Suraya
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9658126/
https://www.ncbi.nlm.nih.gov/pubmed/36364515
http://dx.doi.org/10.3390/nano12213739
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author Zulfikri, Nurul Izzati Zafirah
Ibrahim, Abdel-Baset M. A.
Mustaffa, Nur Amalina
Mohamad Yunus, Rozan
Ahmad Kamil, Suraya
author_facet Zulfikri, Nurul Izzati Zafirah
Ibrahim, Abdel-Baset M. A.
Mustaffa, Nur Amalina
Mohamad Yunus, Rozan
Ahmad Kamil, Suraya
author_sort Zulfikri, Nurul Izzati Zafirah
collection PubMed
description Multilayering of optical thin films is widely used for a range of purposes in photonic technology, but the development of nanofiber structures that can outperform thin films and nanoparticles in optical applications cannot simply be disregarded. Hybrid structures composed of Tm(3+)-doped SiO(2)–HfO(2) in the form of nanofibers (NFs) and thin films (TFs) are deposited on a single substrate using the electrospinning and dip-coating methods, respectively. Ultrafine nanofiber strands with a diameter of 10–60 nm were fabricated in both single and multilayer samples. Enhanced photoluminescence emission intensity of about 10 times was attained at wavelengths of around 457, 512 and 634 nm under an excitation of 350 nm for NF-TF-NF* hybrid structures when compared with single-layered NF and TF structures. The arrangement of nanofibers and thin films in a multilayer structure influenced the luminescence intensity and spectral bandwidth. High transparency in the range of 75–95% transparency across the wavelength of 200–2000 nm was achieved, making it ideal for photonic application. Theoretical findings obtained through IMD software were compared with experimental results, and they were found to be in good agreement.
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spelling pubmed-96581262022-11-15 Enhancing Photoluminescence Intensity and Spectral Bandwidth of Hybrid Nanofiber/Thin-Film Multilayer Tm(3+)-Doped SiO(2)–HfO(2) Zulfikri, Nurul Izzati Zafirah Ibrahim, Abdel-Baset M. A. Mustaffa, Nur Amalina Mohamad Yunus, Rozan Ahmad Kamil, Suraya Nanomaterials (Basel) Article Multilayering of optical thin films is widely used for a range of purposes in photonic technology, but the development of nanofiber structures that can outperform thin films and nanoparticles in optical applications cannot simply be disregarded. Hybrid structures composed of Tm(3+)-doped SiO(2)–HfO(2) in the form of nanofibers (NFs) and thin films (TFs) are deposited on a single substrate using the electrospinning and dip-coating methods, respectively. Ultrafine nanofiber strands with a diameter of 10–60 nm were fabricated in both single and multilayer samples. Enhanced photoluminescence emission intensity of about 10 times was attained at wavelengths of around 457, 512 and 634 nm under an excitation of 350 nm for NF-TF-NF* hybrid structures when compared with single-layered NF and TF structures. The arrangement of nanofibers and thin films in a multilayer structure influenced the luminescence intensity and spectral bandwidth. High transparency in the range of 75–95% transparency across the wavelength of 200–2000 nm was achieved, making it ideal for photonic application. Theoretical findings obtained through IMD software were compared with experimental results, and they were found to be in good agreement. MDPI 2022-10-25 /pmc/articles/PMC9658126/ /pubmed/36364515 http://dx.doi.org/10.3390/nano12213739 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Zulfikri, Nurul Izzati Zafirah
Ibrahim, Abdel-Baset M. A.
Mustaffa, Nur Amalina
Mohamad Yunus, Rozan
Ahmad Kamil, Suraya
Enhancing Photoluminescence Intensity and Spectral Bandwidth of Hybrid Nanofiber/Thin-Film Multilayer Tm(3+)-Doped SiO(2)–HfO(2)
title Enhancing Photoluminescence Intensity and Spectral Bandwidth of Hybrid Nanofiber/Thin-Film Multilayer Tm(3+)-Doped SiO(2)–HfO(2)
title_full Enhancing Photoluminescence Intensity and Spectral Bandwidth of Hybrid Nanofiber/Thin-Film Multilayer Tm(3+)-Doped SiO(2)–HfO(2)
title_fullStr Enhancing Photoluminescence Intensity and Spectral Bandwidth of Hybrid Nanofiber/Thin-Film Multilayer Tm(3+)-Doped SiO(2)–HfO(2)
title_full_unstemmed Enhancing Photoluminescence Intensity and Spectral Bandwidth of Hybrid Nanofiber/Thin-Film Multilayer Tm(3+)-Doped SiO(2)–HfO(2)
title_short Enhancing Photoluminescence Intensity and Spectral Bandwidth of Hybrid Nanofiber/Thin-Film Multilayer Tm(3+)-Doped SiO(2)–HfO(2)
title_sort enhancing photoluminescence intensity and spectral bandwidth of hybrid nanofiber/thin-film multilayer tm(3+)-doped sio(2)–hfo(2)
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9658126/
https://www.ncbi.nlm.nih.gov/pubmed/36364515
http://dx.doi.org/10.3390/nano12213739
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