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Light Emission Intensities of Luminescent Y(2)O(3):Eu and Gd(2)O(3):Eu Particles of Various Sizes

There is great technological interest in elucidating the effect of particle size on the luminescence efficiency of doped rare earth oxides. This study demonstrates unambiguously that there is a size effect and that it is not dependent on the calcination temperature. The Y(2)O(3):Eu and Gd(2)O(3):Eu...

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Autores principales: Adam, Jens, Metzger, Wilhelm, Koch, Marcus, Rogin, Peter, Coenen, Toon, Atchison, Jennifer S., König, Peter
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5333011/
https://www.ncbi.nlm.nih.gov/pubmed/28336860
http://dx.doi.org/10.3390/nano7020026
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author Adam, Jens
Metzger, Wilhelm
Koch, Marcus
Rogin, Peter
Coenen, Toon
Atchison, Jennifer S.
König, Peter
author_facet Adam, Jens
Metzger, Wilhelm
Koch, Marcus
Rogin, Peter
Coenen, Toon
Atchison, Jennifer S.
König, Peter
author_sort Adam, Jens
collection PubMed
description There is great technological interest in elucidating the effect of particle size on the luminescence efficiency of doped rare earth oxides. This study demonstrates unambiguously that there is a size effect and that it is not dependent on the calcination temperature. The Y(2)O(3):Eu and Gd(2)O(3):Eu particles used in this study were synthesized using wet chemistry to produce particles ranging in size between 7 nm and 326 nm and a commercially available phosphor. These particles were characterized using three excitation methods: UV light at 250 nm wavelength, electron beam at 10 kV, and X-rays generated at 100 kV. Regardless of the excitation source, it was found that with increasing particle diameter there is an increase in emitted light. Furthermore, dense particles emit more light than porous particles. These results can be explained by considering the larger surface area to volume ratio of the smallest particles and increased internal surface area of the pores found in the large particles. For the small particles, the additional surface area hosts adsorbates that lead to non-radiative recombination, and in the porous particles, the pore walls can quench fluorescence. This trend is valid across calcination temperatures and is evident when comparing particles from the same calcination temperature.
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spelling pubmed-53330112017-03-21 Light Emission Intensities of Luminescent Y(2)O(3):Eu and Gd(2)O(3):Eu Particles of Various Sizes Adam, Jens Metzger, Wilhelm Koch, Marcus Rogin, Peter Coenen, Toon Atchison, Jennifer S. König, Peter Nanomaterials (Basel) Article There is great technological interest in elucidating the effect of particle size on the luminescence efficiency of doped rare earth oxides. This study demonstrates unambiguously that there is a size effect and that it is not dependent on the calcination temperature. The Y(2)O(3):Eu and Gd(2)O(3):Eu particles used in this study were synthesized using wet chemistry to produce particles ranging in size between 7 nm and 326 nm and a commercially available phosphor. These particles were characterized using three excitation methods: UV light at 250 nm wavelength, electron beam at 10 kV, and X-rays generated at 100 kV. Regardless of the excitation source, it was found that with increasing particle diameter there is an increase in emitted light. Furthermore, dense particles emit more light than porous particles. These results can be explained by considering the larger surface area to volume ratio of the smallest particles and increased internal surface area of the pores found in the large particles. For the small particles, the additional surface area hosts adsorbates that lead to non-radiative recombination, and in the porous particles, the pore walls can quench fluorescence. This trend is valid across calcination temperatures and is evident when comparing particles from the same calcination temperature. MDPI 2017-01-25 /pmc/articles/PMC5333011/ /pubmed/28336860 http://dx.doi.org/10.3390/nano7020026 Text en © 2017 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
Adam, Jens
Metzger, Wilhelm
Koch, Marcus
Rogin, Peter
Coenen, Toon
Atchison, Jennifer S.
König, Peter
Light Emission Intensities of Luminescent Y(2)O(3):Eu and Gd(2)O(3):Eu Particles of Various Sizes
title Light Emission Intensities of Luminescent Y(2)O(3):Eu and Gd(2)O(3):Eu Particles of Various Sizes
title_full Light Emission Intensities of Luminescent Y(2)O(3):Eu and Gd(2)O(3):Eu Particles of Various Sizes
title_fullStr Light Emission Intensities of Luminescent Y(2)O(3):Eu and Gd(2)O(3):Eu Particles of Various Sizes
title_full_unstemmed Light Emission Intensities of Luminescent Y(2)O(3):Eu and Gd(2)O(3):Eu Particles of Various Sizes
title_short Light Emission Intensities of Luminescent Y(2)O(3):Eu and Gd(2)O(3):Eu Particles of Various Sizes
title_sort light emission intensities of luminescent y(2)o(3):eu and gd(2)o(3):eu particles of various sizes
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5333011/
https://www.ncbi.nlm.nih.gov/pubmed/28336860
http://dx.doi.org/10.3390/nano7020026
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