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Mn(4+)-activated BaLaMgSbO(6) double-perovskite phosphor: a novel high-efficiency far-red-emitting luminescent material for indoor plant growth lighting

In the present work, novel high-efficiency Mn(4+)-activated BaLaMgSbO(6) (BLMS) far-red-emitting phosphors used for plant growth LEDs were successfully synthesized via a solid-state reaction method. X-ray diffraction (XRD), photoluminescence (PL), temperature-dependent PL, CIE color coordinates, and...

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Autores principales: Sun, Qi, Wang, Shaoying, Devakumar, Balaji, Sun, Liangling, Liang, Jia, Huang, Xiaoyong
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9059971/
https://www.ncbi.nlm.nih.gov/pubmed/35518995
http://dx.doi.org/10.1039/c8ra09928f
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author Sun, Qi
Wang, Shaoying
Devakumar, Balaji
Sun, Liangling
Liang, Jia
Huang, Xiaoyong
author_facet Sun, Qi
Wang, Shaoying
Devakumar, Balaji
Sun, Liangling
Liang, Jia
Huang, Xiaoyong
author_sort Sun, Qi
collection PubMed
description In the present work, novel high-efficiency Mn(4+)-activated BaLaMgSbO(6) (BLMS) far-red-emitting phosphors used for plant growth LEDs were successfully synthesized via a solid-state reaction method. X-ray diffraction (XRD), photoluminescence (PL), temperature-dependent PL, CIE color coordinates, and lifetimes as well as internal quantum efficiency (IQE) were used to characterize the phosphor samples. The excitation spectrum of the as-obtained BLMS:Mn(4+) phosphors presented two wide bands covering 250–550 nm and the emission spectrum exhibited a far-red emission band in the range of 650–800 nm peaked at 700 nm. Concentration-dependent PL properties of BLMS:Mn(4+) phosphors were studied. The optimal doping concentration of Mn(4+) ions was 0.6 mol%, and the concentration quenching mechanism was determined to be the nonradiative energy transfer among the nearest-neighbor Mn(4+) activators. Impressively, the BLMS:0.6%Mn(4+) sample showed an outstanding IQE of 83%. In addition, luminescence thermal quenching characteristics were also analyzed. Furthermore, the PL spectrum of BLMS:0.6%Mn(4+) sample was compared with the absorption spectrum of phytochrome P(FR). Finally, after combining BLMS:0.6%Mn(4+) phosphors with a 365 nm near-UV LED chip, a far-red light-emitting diode (LED) device was successfully achieved to demonstrate its possible applications in plant growth LEDs.
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spelling pubmed-90599712022-05-04 Mn(4+)-activated BaLaMgSbO(6) double-perovskite phosphor: a novel high-efficiency far-red-emitting luminescent material for indoor plant growth lighting Sun, Qi Wang, Shaoying Devakumar, Balaji Sun, Liangling Liang, Jia Huang, Xiaoyong RSC Adv Chemistry In the present work, novel high-efficiency Mn(4+)-activated BaLaMgSbO(6) (BLMS) far-red-emitting phosphors used for plant growth LEDs were successfully synthesized via a solid-state reaction method. X-ray diffraction (XRD), photoluminescence (PL), temperature-dependent PL, CIE color coordinates, and lifetimes as well as internal quantum efficiency (IQE) were used to characterize the phosphor samples. The excitation spectrum of the as-obtained BLMS:Mn(4+) phosphors presented two wide bands covering 250–550 nm and the emission spectrum exhibited a far-red emission band in the range of 650–800 nm peaked at 700 nm. Concentration-dependent PL properties of BLMS:Mn(4+) phosphors were studied. The optimal doping concentration of Mn(4+) ions was 0.6 mol%, and the concentration quenching mechanism was determined to be the nonradiative energy transfer among the nearest-neighbor Mn(4+) activators. Impressively, the BLMS:0.6%Mn(4+) sample showed an outstanding IQE of 83%. In addition, luminescence thermal quenching characteristics were also analyzed. Furthermore, the PL spectrum of BLMS:0.6%Mn(4+) sample was compared with the absorption spectrum of phytochrome P(FR). Finally, after combining BLMS:0.6%Mn(4+) phosphors with a 365 nm near-UV LED chip, a far-red light-emitting diode (LED) device was successfully achieved to demonstrate its possible applications in plant growth LEDs. The Royal Society of Chemistry 2019-01-24 /pmc/articles/PMC9059971/ /pubmed/35518995 http://dx.doi.org/10.1039/c8ra09928f Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Sun, Qi
Wang, Shaoying
Devakumar, Balaji
Sun, Liangling
Liang, Jia
Huang, Xiaoyong
Mn(4+)-activated BaLaMgSbO(6) double-perovskite phosphor: a novel high-efficiency far-red-emitting luminescent material for indoor plant growth lighting
title Mn(4+)-activated BaLaMgSbO(6) double-perovskite phosphor: a novel high-efficiency far-red-emitting luminescent material for indoor plant growth lighting
title_full Mn(4+)-activated BaLaMgSbO(6) double-perovskite phosphor: a novel high-efficiency far-red-emitting luminescent material for indoor plant growth lighting
title_fullStr Mn(4+)-activated BaLaMgSbO(6) double-perovskite phosphor: a novel high-efficiency far-red-emitting luminescent material for indoor plant growth lighting
title_full_unstemmed Mn(4+)-activated BaLaMgSbO(6) double-perovskite phosphor: a novel high-efficiency far-red-emitting luminescent material for indoor plant growth lighting
title_short Mn(4+)-activated BaLaMgSbO(6) double-perovskite phosphor: a novel high-efficiency far-red-emitting luminescent material for indoor plant growth lighting
title_sort mn(4+)-activated balamgsbo(6) double-perovskite phosphor: a novel high-efficiency far-red-emitting luminescent material for indoor plant growth lighting
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9059971/
https://www.ncbi.nlm.nih.gov/pubmed/35518995
http://dx.doi.org/10.1039/c8ra09928f
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