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Ultra-Small YPO4-YAG:Ce Composite Nanophosphors with a Photoluminescence Quantum Yield Exceeding 50%
Authors:Yige Yan  Adel Mesbah  Lhoussain Khrouz  Corinne Bouillet  Chantal Lorentz  Nicholas Blanchard  Anne C Berends  Marie Anne van de Haar  Frédéric Lerouge  Michael R Krames  Ovidiu Ersen  Frédéric Chaput  Stephane Parola
Affiliation:1. Laboratoire de Chimie, ENS Lyon, CNRS, UCBL - UMR 5182, 46, allée d'Italie, 69364 Lyon Cedex 07, France;2. Université de Lyon, Université Claude Bernard Lyon 1, CNRS, IRCELYON—UMR 5256, 2 Avenue Albert Einstein, 69626 Villeurbanne Cedex, France;3. Institut de Physique et Chimie des Matériaux de Strasbourg, UMR 7504 CNRS-ULP, 23 rue du Loess, 67087 Strasbourg, France;4. Université de Lyon, Université Claude Bernard Lyon 1, CNRS, Institut Lumière Matière, 69622 Villeurbanne, France;5. Seaborough Research BV, Matrix VII Innovation Center, 1098XG Amsterdam, The Netherlands;6. Arkesso LLC, Palo Alto, California, 94306 United States
Abstract:Synthesis of high quality colloidal Cerium(III) doped yttrium aluminum garnet (Y3Al5O12:Ce3+, “YAG:Ce”) nanoparticles (NPs) meeting simultaneously both ultra-small size and high photoluminescence (PL) performance is challenging, as generally a particle size/PL trade-off has been observed for this type of nanomaterials. The glycothermal route is capable to yield ultra-fine crystalline colloidal YAG:Ce nanoparticles with a particle size as small as 10 nm but with quantum yield (QY) no more than 20%. In this paper, the first ultra-small YPO4-YAG:Ce nanocomposite phosphor particles having an exceptional QY-to-size performance with an QY up to 53% while maintaining the particle size ≈10 nm is reported. The NPs are produced via a phosphoric acid- and extra yttrium acetate-assisted glycothermal synthesis route. Localization of phosphate and extra yttrium entities with respect to cerium centers in the YAG host has been determined by fine structural analysis techniques such as X-ray diffration (XRD), solid state nuclear magnetic resonance (NMR), and high resolution scanning transmission electron microscopy (HR-STEM), and shows distinct YPO4 and YAG phases. Finally, a correlation between the additive-induced physico-chemical environment change around cerium centers and the increasing PL performance has been suggested based on electron paramagnetic resonance (EPR), X-ray photoelectron spectrometry (XPS) data, and crystallographic simulation studies.
Keywords:cerium  glycothermal  photoluminescence  ultra-small nanoparticles  yttrium aluminum garnet
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