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Multicolor tunable emission through energy transfer in Dy(3+)/Ho(3+) co-doped CaTiO(3) phosphors with high thermal stability for solid state lighting applications

The exploration of multicolor emitting phosphors with single phase is extremely important for n-UV chip excited LED/WLED’s and multicolor display devices. In this paper, Dy(3+), Ho(3+) singly doped and Dy(3+)/Ho(3+) co-doped CaTiO(3) phosphor materials have been synthesized by solid state reaction m...

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Autores principales: Singh, Priti, Mishra, Hirdyesh, Rai, Shyam Bahadur
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Nature Publishing Group UK 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10692187/
https://www.ncbi.nlm.nih.gov/pubmed/38040827
http://dx.doi.org/10.1038/s41598-023-46065-4
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author Singh, Priti
Mishra, Hirdyesh
Rai, Shyam Bahadur
author_facet Singh, Priti
Mishra, Hirdyesh
Rai, Shyam Bahadur
author_sort Singh, Priti
collection PubMed
description The exploration of multicolor emitting phosphors with single phase is extremely important for n-UV chip excited LED/WLED’s and multicolor display devices. In this paper, Dy(3+), Ho(3+) singly doped and Dy(3+)/Ho(3+) co-doped CaTiO(3) phosphor materials have been synthesized by solid state reaction method at 1473 K. The synthesized materials were characterized by XRD, FE-SEM, EDX, FTIR, PL and lifetime measurements. The PL emission spectra of Dy(3+) doped CaTiO(3) phosphors give intense blue and yellow emissions under UV excitation, while the PL emission spectra of Ho(3+) doped CaTiO(3) phosphor show intense green emission under UV/blue excitations. Further, to get the multicolor emission including white light, Dy(3+) and Ho(3+) were co-doped simultaneously in CaTiO(3) host. It is found that alongwith colored and white light emissions, it also shows energy transfer from Dy(3+) to Ho(3+) with 367 nm and from Ho(3+) to Dy(3+) under 362 nm excitations. The energy transfer efficiency is found to be 67.76% and 69.39% for CaTiO(3):4Dy(3+)/3Ho(3+) and CaTiO(3):3Ho(3+)/5Dy(3+) phosphors, respectively. The CIE color coordinates, CCT and color purity of the phosphors have been calculated, which show color tunability from whitish to deep green via greenish yellow color. The lifetime of (4)F(9/2) level of Dy(3+) ion and (5)S(2) level of Ho(3+) ion is decreased in presence of Ho(3+) and Dy(3+) ions, respectively. This is due to energy transfer from Dy(3+) to Ho(3+) ions and vice versa. A temperature dependent photoluminescence studied of CaTiO(3):4Dy(3+)/2Ho(3+) phosphor show a high thermal stability (82% at 423 K of initial temperature 303 K) in the temperature range 303–483 K with activation energy 0.17 eV. The PLQY are 30%, 33% and 35% for CaTiO(3):4Dy(3+), CaTiO(3):4Dy(3+)/2Ho(3+) and CaTiO(3):3Ho(3+) phosphors, respectively. Hence, Dy(3+), Ho(3+) singly doped and Dy(3+)/Ho(3+) co-doped CaTiO(3) phosphor materials can be used in the field of single matrix perovskite color tunable phosphors which may be used in multicolor display devices, n-UV chip excited LED/WLED’s and photodynamic therapy for the cancer treatment.
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spelling pubmed-106921872023-12-03 Multicolor tunable emission through energy transfer in Dy(3+)/Ho(3+) co-doped CaTiO(3) phosphors with high thermal stability for solid state lighting applications Singh, Priti Mishra, Hirdyesh Rai, Shyam Bahadur Sci Rep Article The exploration of multicolor emitting phosphors with single phase is extremely important for n-UV chip excited LED/WLED’s and multicolor display devices. In this paper, Dy(3+), Ho(3+) singly doped and Dy(3+)/Ho(3+) co-doped CaTiO(3) phosphor materials have been synthesized by solid state reaction method at 1473 K. The synthesized materials were characterized by XRD, FE-SEM, EDX, FTIR, PL and lifetime measurements. The PL emission spectra of Dy(3+) doped CaTiO(3) phosphors give intense blue and yellow emissions under UV excitation, while the PL emission spectra of Ho(3+) doped CaTiO(3) phosphor show intense green emission under UV/blue excitations. Further, to get the multicolor emission including white light, Dy(3+) and Ho(3+) were co-doped simultaneously in CaTiO(3) host. It is found that alongwith colored and white light emissions, it also shows energy transfer from Dy(3+) to Ho(3+) with 367 nm and from Ho(3+) to Dy(3+) under 362 nm excitations. The energy transfer efficiency is found to be 67.76% and 69.39% for CaTiO(3):4Dy(3+)/3Ho(3+) and CaTiO(3):3Ho(3+)/5Dy(3+) phosphors, respectively. The CIE color coordinates, CCT and color purity of the phosphors have been calculated, which show color tunability from whitish to deep green via greenish yellow color. The lifetime of (4)F(9/2) level of Dy(3+) ion and (5)S(2) level of Ho(3+) ion is decreased in presence of Ho(3+) and Dy(3+) ions, respectively. This is due to energy transfer from Dy(3+) to Ho(3+) ions and vice versa. A temperature dependent photoluminescence studied of CaTiO(3):4Dy(3+)/2Ho(3+) phosphor show a high thermal stability (82% at 423 K of initial temperature 303 K) in the temperature range 303–483 K with activation energy 0.17 eV. The PLQY are 30%, 33% and 35% for CaTiO(3):4Dy(3+), CaTiO(3):4Dy(3+)/2Ho(3+) and CaTiO(3):3Ho(3+) phosphors, respectively. Hence, Dy(3+), Ho(3+) singly doped and Dy(3+)/Ho(3+) co-doped CaTiO(3) phosphor materials can be used in the field of single matrix perovskite color tunable phosphors which may be used in multicolor display devices, n-UV chip excited LED/WLED’s and photodynamic therapy for the cancer treatment. Nature Publishing Group UK 2023-12-01 /pmc/articles/PMC10692187/ /pubmed/38040827 http://dx.doi.org/10.1038/s41598-023-46065-4 Text en © The Author(s) 2023 https://creativecommons.org/licenses/by/4.0/Open Access This article is licensed under a Creative Commons Attribution 4.0 International License, which permits use, sharing, adaptation, distribution and reproduction in any medium or format, as long as you give appropriate credit to the original author(s) and the source, provide a link to the Creative Commons licence, and indicate if changes were made. The images or other third party material in this article are included in the article's Creative Commons licence, unless indicated otherwise in a credit line to the material. If material is not included in the article's Creative Commons licence and your intended use is not permitted by statutory regulation or exceeds the permitted use, you will need to obtain permission directly from the copyright holder. To view a copy of this licence, visit http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) .
spellingShingle Article
Singh, Priti
Mishra, Hirdyesh
Rai, Shyam Bahadur
Multicolor tunable emission through energy transfer in Dy(3+)/Ho(3+) co-doped CaTiO(3) phosphors with high thermal stability for solid state lighting applications
title Multicolor tunable emission through energy transfer in Dy(3+)/Ho(3+) co-doped CaTiO(3) phosphors with high thermal stability for solid state lighting applications
title_full Multicolor tunable emission through energy transfer in Dy(3+)/Ho(3+) co-doped CaTiO(3) phosphors with high thermal stability for solid state lighting applications
title_fullStr Multicolor tunable emission through energy transfer in Dy(3+)/Ho(3+) co-doped CaTiO(3) phosphors with high thermal stability for solid state lighting applications
title_full_unstemmed Multicolor tunable emission through energy transfer in Dy(3+)/Ho(3+) co-doped CaTiO(3) phosphors with high thermal stability for solid state lighting applications
title_short Multicolor tunable emission through energy transfer in Dy(3+)/Ho(3+) co-doped CaTiO(3) phosphors with high thermal stability for solid state lighting applications
title_sort multicolor tunable emission through energy transfer in dy(3+)/ho(3+) co-doped catio(3) phosphors with high thermal stability for solid state lighting applications
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10692187/
https://www.ncbi.nlm.nih.gov/pubmed/38040827
http://dx.doi.org/10.1038/s41598-023-46065-4
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