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Polymer Thermal Treatment Production of Cerium Doped Willemite Nanoparticles: An Analysis of Structure, Energy Band Gap and Luminescence Properties

The contemporary market needs for enhanced solid–state lighting devices has led to an increased demand for the production of willemite based phosphors using low-cost techniques. In this study, Ce(3+) doped willemite nanoparticles were fabricated using polymer thermal treatment method. The special ef...

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Autores principales: Alibe, Ibrahim Mustapha, Matori, Khamirul Amin, Zaid, Mohd Hafiz Mohd, Nasir, Salisu, Alibe, Ali Mustapha, Khiri, Mohammad Zulhasif Ahmad
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7957781/
https://www.ncbi.nlm.nih.gov/pubmed/33673655
http://dx.doi.org/10.3390/ma14051118
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author Alibe, Ibrahim Mustapha
Matori, Khamirul Amin
Zaid, Mohd Hafiz Mohd
Nasir, Salisu
Alibe, Ali Mustapha
Khiri, Mohammad Zulhasif Ahmad
author_facet Alibe, Ibrahim Mustapha
Matori, Khamirul Amin
Zaid, Mohd Hafiz Mohd
Nasir, Salisu
Alibe, Ali Mustapha
Khiri, Mohammad Zulhasif Ahmad
author_sort Alibe, Ibrahim Mustapha
collection PubMed
description The contemporary market needs for enhanced solid–state lighting devices has led to an increased demand for the production of willemite based phosphors using low-cost techniques. In this study, Ce(3+) doped willemite nanoparticles were fabricated using polymer thermal treatment method. The special effects of the calcination temperatures and the dopant concentration on the structural and optical properties of the material were thoroughly studied. The XRD analysis of the samples treated at 900 °C revealed the development and or materialization of the willemite phase. The increase in the dopant concentration causes an expansion of the lattice owing to the replacement of larger Ce(3+) ions for smaller Zn(2+) ions. Based on the FESEM and TEM micrographs, the nanoparticles size increases with the increase in the cerium ions. The mean particles sizes were estimated to be 23.61 nm at 1 mol% to 34.02 nm at 5 mol% of the cerium dopant. The optical band gap energy of the doped samples formed at 900 °C decreased precisely by 0.21 eV (i.e., 5.21 to 5.00 eV). The PL analysis of the doped samples exhibits a strong emission at 400 nm which is ascribed to the transition of an electron from localized Ce(2f) state to the valence band of O(2p). The energy level of the Ce(3+) ions affects the willemite crystal lattice, thus causing a decrease in the intensity of the green emission at 530 nm and the blue emission at 485 nm. The wide optical band gap energy of the willemite produced is expected to pave the way for exciting innovations in solid–state lighting applications.
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spelling pubmed-79577812021-03-16 Polymer Thermal Treatment Production of Cerium Doped Willemite Nanoparticles: An Analysis of Structure, Energy Band Gap and Luminescence Properties Alibe, Ibrahim Mustapha Matori, Khamirul Amin Zaid, Mohd Hafiz Mohd Nasir, Salisu Alibe, Ali Mustapha Khiri, Mohammad Zulhasif Ahmad Materials (Basel) Article The contemporary market needs for enhanced solid–state lighting devices has led to an increased demand for the production of willemite based phosphors using low-cost techniques. In this study, Ce(3+) doped willemite nanoparticles were fabricated using polymer thermal treatment method. The special effects of the calcination temperatures and the dopant concentration on the structural and optical properties of the material were thoroughly studied. The XRD analysis of the samples treated at 900 °C revealed the development and or materialization of the willemite phase. The increase in the dopant concentration causes an expansion of the lattice owing to the replacement of larger Ce(3+) ions for smaller Zn(2+) ions. Based on the FESEM and TEM micrographs, the nanoparticles size increases with the increase in the cerium ions. The mean particles sizes were estimated to be 23.61 nm at 1 mol% to 34.02 nm at 5 mol% of the cerium dopant. The optical band gap energy of the doped samples formed at 900 °C decreased precisely by 0.21 eV (i.e., 5.21 to 5.00 eV). The PL analysis of the doped samples exhibits a strong emission at 400 nm which is ascribed to the transition of an electron from localized Ce(2f) state to the valence band of O(2p). The energy level of the Ce(3+) ions affects the willemite crystal lattice, thus causing a decrease in the intensity of the green emission at 530 nm and the blue emission at 485 nm. The wide optical band gap energy of the willemite produced is expected to pave the way for exciting innovations in solid–state lighting applications. MDPI 2021-02-27 /pmc/articles/PMC7957781/ /pubmed/33673655 http://dx.doi.org/10.3390/ma14051118 Text en © 2021 by the authors. 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 (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Alibe, Ibrahim Mustapha
Matori, Khamirul Amin
Zaid, Mohd Hafiz Mohd
Nasir, Salisu
Alibe, Ali Mustapha
Khiri, Mohammad Zulhasif Ahmad
Polymer Thermal Treatment Production of Cerium Doped Willemite Nanoparticles: An Analysis of Structure, Energy Band Gap and Luminescence Properties
title Polymer Thermal Treatment Production of Cerium Doped Willemite Nanoparticles: An Analysis of Structure, Energy Band Gap and Luminescence Properties
title_full Polymer Thermal Treatment Production of Cerium Doped Willemite Nanoparticles: An Analysis of Structure, Energy Band Gap and Luminescence Properties
title_fullStr Polymer Thermal Treatment Production of Cerium Doped Willemite Nanoparticles: An Analysis of Structure, Energy Band Gap and Luminescence Properties
title_full_unstemmed Polymer Thermal Treatment Production of Cerium Doped Willemite Nanoparticles: An Analysis of Structure, Energy Band Gap and Luminescence Properties
title_short Polymer Thermal Treatment Production of Cerium Doped Willemite Nanoparticles: An Analysis of Structure, Energy Band Gap and Luminescence Properties
title_sort polymer thermal treatment production of cerium doped willemite nanoparticles: an analysis of structure, energy band gap and luminescence properties
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7957781/
https://www.ncbi.nlm.nih.gov/pubmed/33673655
http://dx.doi.org/10.3390/ma14051118
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