Efficient multicolor tunability of ultrasmall ternary-doped LaF 3 nanoparticles: energy conversion and magnetic behavior
Luminescence-tunable multicolored LaF :xCe ,xGd ,yEu (x = 5; y = 1, 5, 10, and 15 mol%) nanoparticles have been synthesized via a low cost polyol method. Powder X-ray diffraction and high-resolution transmission electron microscopy studies confirm the hexagonal phase of the LaF :xCe ,xGd ,yEu nanoph...
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Veröffentlicht in: | Physical chemistry chemical physics : PCCP 2017-07, Vol.19 (28), p.18660-18670 |
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Sprache: | eng |
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Zusammenfassung: | Luminescence-tunable multicolored LaF
:xCe
,xGd
,yEu
(x = 5; y = 1, 5, 10, and 15 mol%) nanoparticles have been synthesized via a low cost polyol method. Powder X-ray diffraction and high-resolution transmission electron microscopy studies confirm the hexagonal phase of the LaF
:xCe
,xGd
,yEu
nanophosphors with average sizes (oval shape) ranging from 5 to 7 nm. Energy-dispersive X-ray spectroscopy analyses show the uniform distribution of Ce
, Gd
, and Eu
dopants in the LaF
host matrix. The photoluminescence spectra and electron paramagnetic resonance measurements guarantee the presence of Eu
, corroborated through DC susceptibility measurements of the samples displaying paramagnetic behavior at 300 K, whereas weak ferromagnetic ordering is shown at 2 K. The non-radiative energy transfer processes from the 4f(
F
) → 5d state (Ce
) to the intraconfigurational 4f excited levels of rare earth ions and simultaneous emissions in the visible region from the 4f
5d
(Eu
) and
D
(Eu
) emitting levels, leading to overlapped broad and narrow emission bands, have been proclaimed. The energy transfer mechanism proposes involvement of the Gd
ion sub-lattice as the bridge and finally trapping by Eu
, upon excitation of the Ce
ion. The calculation of experimental intensity parameters (Ω
) has been discussed and the highest emission quantum efficiency (η = 85%) of the Eu
ion for the y = 10 mol% sample is reported. The advantageous existence of the Eu
/Eu
ratio along with variously doped nanomaterials described in this work, results in tunable emission color in the blue-white-red regions, highlighting the potential application of the samples in solid-state lighting devices, scintillation devices, and multiplex detection. |
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ISSN: | 1463-9076 1463-9084 |
DOI: | 10.1039/C7CP02235B |