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A novel red-emitting phosphor Mg(2)Y(2)Al(2)Si(2)O(12):Ce(3+)/Mn(2+) for blue chip-based white LEDs

Traditional white light-emitting diodes (LEDs) (blue chip + YAG:Ce(3+) yellow phosphor) have the limitation of red deficiency, which limits their application in the illumination field. The single cation/anion substitution or co-doping of activators can increase the red component; however, the large...

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Autores principales: Wang, Zhipeng, Wang, Zhijun, Li, Yuebin, Liu, Jinjin, Bao, Qi, Meng, Xiangyu, Qiu, Keliang, Yang, Zhiping, Wang, Dawei, Li, Panlai
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8693815/
https://www.ncbi.nlm.nih.gov/pubmed/35424247
http://dx.doi.org/10.1039/d0ra09289d
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author Wang, Zhipeng
Wang, Zhijun
Li, Yuebin
Liu, Jinjin
Bao, Qi
Meng, Xiangyu
Qiu, Keliang
Yang, Zhiping
Wang, Dawei
Li, Panlai
author_facet Wang, Zhipeng
Wang, Zhijun
Li, Yuebin
Liu, Jinjin
Bao, Qi
Meng, Xiangyu
Qiu, Keliang
Yang, Zhiping
Wang, Dawei
Li, Panlai
author_sort Wang, Zhipeng
collection PubMed
description Traditional white light-emitting diodes (LEDs) (blue chip + YAG:Ce(3+) yellow phosphor) have the limitation of red deficiency, which limits their application in the illumination field. The single cation/anion substitution or co-doping of activators can increase the red component; however, the large energy loss is attributed to the ultra-long Stokes shift and energy transfer. This work attempts to utilize the short-distance Stokes shift and a small amount of energy transfer to increase the red component in two steps. First, based on a large number of previous research results, the Mg(2)Y(2)Al(2)Si(2)O(12):Ce(3+) phosphor is selected. Second, additional enhancement of the red component in the emission spectrum was achieved by ion co-doping Mn(2+) into Mg(2)Y(2)Al(2)Si(2)O(12):Ce(3+). The emission peaks for samples Mg(2)Y(2)Al(2)Si(2)O(12):Ce(3+),Mn(2+) shift from 600 to 635 nm with increase in the concentration of Mn(2+), and the emission spectra intensity of Mg(1.97)Y(1.93)Al(2)Si(2)O(12):0.07 Ce(3+),0.03 Mn(2+) anomalously increased by ∼37%, which was attributed to the increase in the distance between Ce(3+) ions because of the doping of Mn(2+) ions, and reduction in the concentration of defects in the crystal, resulting in the energy loss decreases of Ce(3+). The emission peak of Mg(1.97)Y(1.93)Al(2)Si(2)O(12):0.07 Ce(3+),0.03 Mn(2+) shifts to 618 nm and the quantum efficiency was as high as 83.07%. Furthermore, this sample has high thermal stability and the emission intensity was still 80.14% at 120 °C. As such, it has great potential in the application of white LEDs.
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spelling pubmed-86938152022-04-13 A novel red-emitting phosphor Mg(2)Y(2)Al(2)Si(2)O(12):Ce(3+)/Mn(2+) for blue chip-based white LEDs Wang, Zhipeng Wang, Zhijun Li, Yuebin Liu, Jinjin Bao, Qi Meng, Xiangyu Qiu, Keliang Yang, Zhiping Wang, Dawei Li, Panlai RSC Adv Chemistry Traditional white light-emitting diodes (LEDs) (blue chip + YAG:Ce(3+) yellow phosphor) have the limitation of red deficiency, which limits their application in the illumination field. The single cation/anion substitution or co-doping of activators can increase the red component; however, the large energy loss is attributed to the ultra-long Stokes shift and energy transfer. This work attempts to utilize the short-distance Stokes shift and a small amount of energy transfer to increase the red component in two steps. First, based on a large number of previous research results, the Mg(2)Y(2)Al(2)Si(2)O(12):Ce(3+) phosphor is selected. Second, additional enhancement of the red component in the emission spectrum was achieved by ion co-doping Mn(2+) into Mg(2)Y(2)Al(2)Si(2)O(12):Ce(3+). The emission peaks for samples Mg(2)Y(2)Al(2)Si(2)O(12):Ce(3+),Mn(2+) shift from 600 to 635 nm with increase in the concentration of Mn(2+), and the emission spectra intensity of Mg(1.97)Y(1.93)Al(2)Si(2)O(12):0.07 Ce(3+),0.03 Mn(2+) anomalously increased by ∼37%, which was attributed to the increase in the distance between Ce(3+) ions because of the doping of Mn(2+) ions, and reduction in the concentration of defects in the crystal, resulting in the energy loss decreases of Ce(3+). The emission peak of Mg(1.97)Y(1.93)Al(2)Si(2)O(12):0.07 Ce(3+),0.03 Mn(2+) shifts to 618 nm and the quantum efficiency was as high as 83.07%. Furthermore, this sample has high thermal stability and the emission intensity was still 80.14% at 120 °C. As such, it has great potential in the application of white LEDs. The Royal Society of Chemistry 2021-01-13 /pmc/articles/PMC8693815/ /pubmed/35424247 http://dx.doi.org/10.1039/d0ra09289d Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Wang, Zhipeng
Wang, Zhijun
Li, Yuebin
Liu, Jinjin
Bao, Qi
Meng, Xiangyu
Qiu, Keliang
Yang, Zhiping
Wang, Dawei
Li, Panlai
A novel red-emitting phosphor Mg(2)Y(2)Al(2)Si(2)O(12):Ce(3+)/Mn(2+) for blue chip-based white LEDs
title A novel red-emitting phosphor Mg(2)Y(2)Al(2)Si(2)O(12):Ce(3+)/Mn(2+) for blue chip-based white LEDs
title_full A novel red-emitting phosphor Mg(2)Y(2)Al(2)Si(2)O(12):Ce(3+)/Mn(2+) for blue chip-based white LEDs
title_fullStr A novel red-emitting phosphor Mg(2)Y(2)Al(2)Si(2)O(12):Ce(3+)/Mn(2+) for blue chip-based white LEDs
title_full_unstemmed A novel red-emitting phosphor Mg(2)Y(2)Al(2)Si(2)O(12):Ce(3+)/Mn(2+) for blue chip-based white LEDs
title_short A novel red-emitting phosphor Mg(2)Y(2)Al(2)Si(2)O(12):Ce(3+)/Mn(2+) for blue chip-based white LEDs
title_sort novel red-emitting phosphor mg(2)y(2)al(2)si(2)o(12):ce(3+)/mn(2+) for blue chip-based white leds
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8693815/
https://www.ncbi.nlm.nih.gov/pubmed/35424247
http://dx.doi.org/10.1039/d0ra09289d
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