Layered structure-induced quenching delay toward highly efficient and thermally stable red emission in Eu-activated borotellurate phosphors
The development of highly efficient rare earth-activated phosphor materials for solid-state lighting is restricted currently by concentration and temperature quenching behaviors. Herein, Eu 3+ -activated borotellurate Na 2 Y 2 TeO 4 (BO 3 ) 2 (NYTB) red-emitting phosphors are developed via a microwa...
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Veröffentlicht in: | Journal of materials chemistry. C, Materials for optical and electronic devices Materials for optical and electronic devices, 2024-02, Vol.12 (6), p.237-247 |
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Hauptverfasser: | , , , , , , , |
Format: | Artikel |
Sprache: | eng |
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Zusammenfassung: | The development of highly efficient rare earth-activated phosphor materials for solid-state lighting is restricted currently by concentration and temperature quenching behaviors. Herein, Eu
3+
-activated borotellurate Na
2
Y
2
TeO
4
(BO
3
)
2
(NYTB) red-emitting phosphors are developed
via
a microwave-assisted method. The layered structure induces delayed concentration quenching (up to 50% Eu
3+
activators), significantly contributing to highly efficient red emission with a luminescence efficiency of 83.7%. Meanwhile, the large energy barrier and sufficient structure rigidity of NYTB ensure low thermal quenching behavior. At 425 K, the red-emitting intensity only loses 6.3% of the original value at room temperature. Finally, a white light-emitting diode device is assembled with the NYTB:Eu
3+
, BaMgAl
10
O
17
:Eu
2+
, and (Ba,Sr)
2
SiO
4
:Eu
2+
phosphors, exhibiting satisfactory lighting performance. This study not only deepens the insight of the layered structure-dependent concentration quenching delay, but also offers a thermally stable red phosphor candidate.
A Na
2
Y
2
TeO
4
(BO
3
)
2
:Eu
3+
red phosphor was developed. Layered structure-induced concentration quenching delay and good temperature quenching resistance are achieved simultaneously. |
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ISSN: | 2050-7526 2050-7534 |
DOI: | 10.1039/d3tc04320g |