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Thermal stabilization and energy transfer in narrow-band red-emitting Sr[(MgAl)(LiSi)N]:Eu phosphors
Cuboid-coordinated nitridomagnesoaluminate Sr[Mg 2 Al 2 N 4 ]:Eu 2+ and a solid solution of Sr 1− x [(Mg 2 Al 2 ) 1− y (Al 2 Si 2 ) y N 4 ]:Eu x 2+ were prepared using all-nitride precursors by gas pressure sintering. X-ray diffraction (XRD) data of the phosphors were validated by Rietveld refinemen...
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Published in: | Journal of materials chemistry. C, Materials for optical and electronic devices Materials for optical and electronic devices, 2018-06, Vol.6 (22), p.5975-5983 |
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Main Authors: | , , , , , , |
Format: | Article |
Language: | English |
Online Access: | Get full text |
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Summary: | Cuboid-coordinated nitridomagnesoaluminate Sr[Mg
2
Al
2
N
4
]:Eu
2+
and a solid solution of Sr
1−
x
[(Mg
2
Al
2
)
1−
y
(Al
2
Si
2
)
y
N
4
]:Eu
x
2+
were prepared using all-nitride precursors by gas pressure sintering. X-ray diffraction (XRD) data of the phosphors were validated by Rietveld refinement of synchrotron X-ray powder XRD data with the space group
I
4/
m
indexed to a tetragonal crystal system. The
7
Li solid-state magic-angle spinning nuclear magnetic resonance (ss-MAS-NMR) data prove the successful incorporation of the Li
+
-Si
4+
couple. The blue-light excitable property with the excitation band peaking at 460 nm gave rise to emission at 620-630 nm at
x
= 0.004, with a full-width-at-half-maximum of ∼77 nm. The inhomogeneous broadening of the Eu
2+
luminescence in the system due to the effective energy transfer from one activator to another was observed which concurrently resulted in spectral peak shifts from ∼615 nm to ∼680 nm as a function of the amount of Eu
2+
. The Li
+
-Si
4+
-tuned solid solution increased the emission intensity without significantly shifting the emission wavelength. Such a phenomenon was accompanied by an improvement in thermal stability from
Δ
= 965 cm
−1
for
y
= 0, to
Δ
= 1365 cm
−1
for
y
= 0.1 wherein
Δ
corresponds to the activation energy from the 5d states to the conduction band. The simple gas pressure sintering strategy using all-nitride starting materials resulted in the desired blue light-excitable narrowband red emitting thermally stabilized phosphor.
The Li-Si substitution in Sr[Mg
2
Al
2
N
4
]:Eu
2+
enhanced thermal stability and tuned the emission further gaining insight into the energy transfer mechanism. |
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ISSN: | 2050-7526 2050-7534 |
DOI: | 10.1039/c7tc05613c |