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Concentration quenching inhibition and fluorescence enhancement in Eu(3+)-doped molybdate red phosphors with two-phase mixing

Red phosphor plays a crucial role in improving the quality of white light illumination and backlight displays. However, significant challenges remain to enhance red emission intensity in different matrix materials. Herein, a class of two-phase mixing red phosphors of NaIn(1−x)(MoO(4))(2):xEu(3+) (NI...

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Autores principales: Liu, Shuanglai, Yan, Yimin, Liu, Xiaohan, Cui, Zheqian, Jia, Shiheng, Xing, Yiwen, Guo, Shuang, Wang, Bao, Wang, Yunfeng
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10619205/
https://www.ncbi.nlm.nih.gov/pubmed/37920682
http://dx.doi.org/10.1039/d3ra05873e
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author Liu, Shuanglai
Yan, Yimin
Liu, Xiaohan
Cui, Zheqian
Jia, Shiheng
Xing, Yiwen
Guo, Shuang
Wang, Bao
Wang, Yunfeng
author_facet Liu, Shuanglai
Yan, Yimin
Liu, Xiaohan
Cui, Zheqian
Jia, Shiheng
Xing, Yiwen
Guo, Shuang
Wang, Bao
Wang, Yunfeng
author_sort Liu, Shuanglai
collection PubMed
description Red phosphor plays a crucial role in improving the quality of white light illumination and backlight displays. However, significant challenges remain to enhance red emission intensity in different matrix materials. Herein, a class of two-phase mixing red phosphors of NaIn(1−x)(MoO(4))(2):xEu(3+) (NIMO:xEu(3+)) has been successfully prepared by the traditional high-temperature solid-state reaction method. The coordination environment, phase structure, excitation and emission spectra, fluorescence kinetics, and temperature-dependent luminescence properties of the system have been studied comprehensively. It is worth mentioning that the red emission intensity continues to increase with the increased Eu(3+) doping concentration, and the fluorescence lifetimes remain unchanged. These extraordinary phenomena mainly stem from the special concentration quenching mechanism in such two-phase mixing material, namely, the increased lattice interface barriers from Eu six-coordinated units and Eu eight-coordinated units can effectively block the non-radiation by enlarging the average distance between luminescent centers. The improved fluorescence thermal stability and suppressed non-radiative transition rate in NIMO:40%Eu(3+) sample are further proving regulatory role of lattice interface barriers. In addition, a warm white light-emitting diode (LED) is successfully fabricated, exhibiting Commission Internationale de l'Eclairage (CIE) coordinates of (0.343, 0.335), a color rendering index (CRI) of 92.1, and a correlated color temperature (CCT) of 5013 K, showing significant application prospects for high-quality lighting devices.
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spelling pubmed-106192052023-11-02 Concentration quenching inhibition and fluorescence enhancement in Eu(3+)-doped molybdate red phosphors with two-phase mixing Liu, Shuanglai Yan, Yimin Liu, Xiaohan Cui, Zheqian Jia, Shiheng Xing, Yiwen Guo, Shuang Wang, Bao Wang, Yunfeng RSC Adv Chemistry Red phosphor plays a crucial role in improving the quality of white light illumination and backlight displays. However, significant challenges remain to enhance red emission intensity in different matrix materials. Herein, a class of two-phase mixing red phosphors of NaIn(1−x)(MoO(4))(2):xEu(3+) (NIMO:xEu(3+)) has been successfully prepared by the traditional high-temperature solid-state reaction method. The coordination environment, phase structure, excitation and emission spectra, fluorescence kinetics, and temperature-dependent luminescence properties of the system have been studied comprehensively. It is worth mentioning that the red emission intensity continues to increase with the increased Eu(3+) doping concentration, and the fluorescence lifetimes remain unchanged. These extraordinary phenomena mainly stem from the special concentration quenching mechanism in such two-phase mixing material, namely, the increased lattice interface barriers from Eu six-coordinated units and Eu eight-coordinated units can effectively block the non-radiation by enlarging the average distance between luminescent centers. The improved fluorescence thermal stability and suppressed non-radiative transition rate in NIMO:40%Eu(3+) sample are further proving regulatory role of lattice interface barriers. In addition, a warm white light-emitting diode (LED) is successfully fabricated, exhibiting Commission Internationale de l'Eclairage (CIE) coordinates of (0.343, 0.335), a color rendering index (CRI) of 92.1, and a correlated color temperature (CCT) of 5013 K, showing significant application prospects for high-quality lighting devices. The Royal Society of Chemistry 2023-11-01 /pmc/articles/PMC10619205/ /pubmed/37920682 http://dx.doi.org/10.1039/d3ra05873e Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Liu, Shuanglai
Yan, Yimin
Liu, Xiaohan
Cui, Zheqian
Jia, Shiheng
Xing, Yiwen
Guo, Shuang
Wang, Bao
Wang, Yunfeng
Concentration quenching inhibition and fluorescence enhancement in Eu(3+)-doped molybdate red phosphors with two-phase mixing
title Concentration quenching inhibition and fluorescence enhancement in Eu(3+)-doped molybdate red phosphors with two-phase mixing
title_full Concentration quenching inhibition and fluorescence enhancement in Eu(3+)-doped molybdate red phosphors with two-phase mixing
title_fullStr Concentration quenching inhibition and fluorescence enhancement in Eu(3+)-doped molybdate red phosphors with two-phase mixing
title_full_unstemmed Concentration quenching inhibition and fluorescence enhancement in Eu(3+)-doped molybdate red phosphors with two-phase mixing
title_short Concentration quenching inhibition and fluorescence enhancement in Eu(3+)-doped molybdate red phosphors with two-phase mixing
title_sort concentration quenching inhibition and fluorescence enhancement in eu(3+)-doped molybdate red phosphors with two-phase mixing
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10619205/
https://www.ncbi.nlm.nih.gov/pubmed/37920682
http://dx.doi.org/10.1039/d3ra05873e
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