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Layered rare-earth hydroxide and oxide nanoplates of the Y/Tb/Eu system: phase-controlled processing, structure characterization and color-tunable photoluminescence via selective excitation and efficient energy transfer

Well-crystallized (Y(0.97−x)Tb(0.03)Eu(x))(2)(OH)(5)NO(3)·nH(2)O (x = 0–0.03) layered rare-earth hydroxide (LRH) nanoflakes of a pure high-hydration phase have been produced by autoclaving from the nitrate/NH(4)OH reaction system under the optimized conditions of 100 °C and pH ∼7.0. The flakes were...

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Autores principales: Wu, Xiaoli, Li, Ji-Guang, Li, Jinkai, Zhu, Qi, Li, Xiaodong, Sun, Xudong, Sakka, Yoshio
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Taylor & Francis 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5090582/
https://www.ncbi.nlm.nih.gov/pubmed/27877564
http://dx.doi.org/10.1088/1468-6996/14/1/015006
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author Wu, Xiaoli
Li, Ji-Guang
Li, Jinkai
Zhu, Qi
Li, Xiaodong
Sun, Xudong
Sakka, Yoshio
author_facet Wu, Xiaoli
Li, Ji-Guang
Li, Jinkai
Zhu, Qi
Li, Xiaodong
Sun, Xudong
Sakka, Yoshio
author_sort Wu, Xiaoli
collection PubMed
description Well-crystallized (Y(0.97−x)Tb(0.03)Eu(x))(2)(OH)(5)NO(3)·nH(2)O (x = 0–0.03) layered rare-earth hydroxide (LRH) nanoflakes of a pure high-hydration phase have been produced by autoclaving from the nitrate/NH(4)OH reaction system under the optimized conditions of 100 °C and pH ∼7.0. The flakes were then converted into (Y(0.97−x)Tb(0.03)Eu(x))(2)O(3) phosphor nanoplates with color-tunable photoluminescence. Detailed structural characterizations confirmed that LRH solid solutions contained NO(3)(−) anions intercalated between the layers. Characteristic Tb(3+) and Eu(3+) emissions were detected in the ternary LRHs by selectively exciting the two types of activators, and the energy transfer from Tb(3+) to Eu(3+) was observed. Annealing the LRHs at 1100 °C produced cubic-lattice (Y(0.97−x)Tb(0.03)Eu(x))(2)O(3) solid-solution nanoplates with exposed 222 facets. Multicolor, intensity-adjustable luminescence was attained by varying the excitation wavelength from ∼249 nm (the charge transfer excitation band of Eu(3+)) to 278 nm (the 4f(8)–4f(7)5d(1) transition of Tb(3+)). Unitizing the efficient Tb(3+) to Eu(3+) energy transfer, the emission color of (Y(0.97−x)Tb(0.03)Eu(x))(2)O(3) was tuned from approximately green to yellowish-orange by varying the Eu(3+)/Tb(3+) ratio. At the optimal Eu(3+) content of x = 0.01, the efficiency of energy transfer was ∼91% and the transfer mechanism was suggested to be electric multipole interactions. The phosphor nanoplates developed in this work may be incorporated in luminescent films and find various lighting and display applications.
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spelling pubmed-50905822016-11-22 Layered rare-earth hydroxide and oxide nanoplates of the Y/Tb/Eu system: phase-controlled processing, structure characterization and color-tunable photoluminescence via selective excitation and efficient energy transfer Wu, Xiaoli Li, Ji-Guang Li, Jinkai Zhu, Qi Li, Xiaodong Sun, Xudong Sakka, Yoshio Sci Technol Adv Mater Papers Well-crystallized (Y(0.97−x)Tb(0.03)Eu(x))(2)(OH)(5)NO(3)·nH(2)O (x = 0–0.03) layered rare-earth hydroxide (LRH) nanoflakes of a pure high-hydration phase have been produced by autoclaving from the nitrate/NH(4)OH reaction system under the optimized conditions of 100 °C and pH ∼7.0. The flakes were then converted into (Y(0.97−x)Tb(0.03)Eu(x))(2)O(3) phosphor nanoplates with color-tunable photoluminescence. Detailed structural characterizations confirmed that LRH solid solutions contained NO(3)(−) anions intercalated between the layers. Characteristic Tb(3+) and Eu(3+) emissions were detected in the ternary LRHs by selectively exciting the two types of activators, and the energy transfer from Tb(3+) to Eu(3+) was observed. Annealing the LRHs at 1100 °C produced cubic-lattice (Y(0.97−x)Tb(0.03)Eu(x))(2)O(3) solid-solution nanoplates with exposed 222 facets. Multicolor, intensity-adjustable luminescence was attained by varying the excitation wavelength from ∼249 nm (the charge transfer excitation band of Eu(3+)) to 278 nm (the 4f(8)–4f(7)5d(1) transition of Tb(3+)). Unitizing the efficient Tb(3+) to Eu(3+) energy transfer, the emission color of (Y(0.97−x)Tb(0.03)Eu(x))(2)O(3) was tuned from approximately green to yellowish-orange by varying the Eu(3+)/Tb(3+) ratio. At the optimal Eu(3+) content of x = 0.01, the efficiency of energy transfer was ∼91% and the transfer mechanism was suggested to be electric multipole interactions. The phosphor nanoplates developed in this work may be incorporated in luminescent films and find various lighting and display applications. Taylor & Francis 2013-02-21 /pmc/articles/PMC5090582/ /pubmed/27877564 http://dx.doi.org/10.1088/1468-6996/14/1/015006 Text en © 2013 National Institute for Materials Science http://creativecommons.org/licenses/by-nc-sa/3.0/ Content from this work may be used under the terms of the Creative Commons Attribution-NonCommercial-ShareAlike 3.0 licence (http://creativecommons.org/licenses/by-nc-sa/3.0) . Any further distribution of this work must maintain attribution to the author(s) and the title of the work, journal citation and DOI.
spellingShingle Papers
Wu, Xiaoli
Li, Ji-Guang
Li, Jinkai
Zhu, Qi
Li, Xiaodong
Sun, Xudong
Sakka, Yoshio
Layered rare-earth hydroxide and oxide nanoplates of the Y/Tb/Eu system: phase-controlled processing, structure characterization and color-tunable photoluminescence via selective excitation and efficient energy transfer
title Layered rare-earth hydroxide and oxide nanoplates of the Y/Tb/Eu system: phase-controlled processing, structure characterization and color-tunable photoluminescence via selective excitation and efficient energy transfer
title_full Layered rare-earth hydroxide and oxide nanoplates of the Y/Tb/Eu system: phase-controlled processing, structure characterization and color-tunable photoluminescence via selective excitation and efficient energy transfer
title_fullStr Layered rare-earth hydroxide and oxide nanoplates of the Y/Tb/Eu system: phase-controlled processing, structure characterization and color-tunable photoluminescence via selective excitation and efficient energy transfer
title_full_unstemmed Layered rare-earth hydroxide and oxide nanoplates of the Y/Tb/Eu system: phase-controlled processing, structure characterization and color-tunable photoluminescence via selective excitation and efficient energy transfer
title_short Layered rare-earth hydroxide and oxide nanoplates of the Y/Tb/Eu system: phase-controlled processing, structure characterization and color-tunable photoluminescence via selective excitation and efficient energy transfer
title_sort layered rare-earth hydroxide and oxide nanoplates of the y/tb/eu system: phase-controlled processing, structure characterization and color-tunable photoluminescence via selective excitation and efficient energy transfer
topic Papers
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5090582/
https://www.ncbi.nlm.nih.gov/pubmed/27877564
http://dx.doi.org/10.1088/1468-6996/14/1/015006
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