Ultra‐Small YPO4‐YAG:Ce Composite Nanophosphors with a Photoluminescence Quantum Yield Exceeding 50%

Author:

Yan Yige1,Mesbah Adel2,Khrouz Lhoussain1,Bouillet Corinne3,Lorentz Chantal2,Blanchard Nicholas4,Berends Anne C.5,Anne van de Haar Marie5,Lerouge Frédéric1,Krames Michael R.6,Ersen Ovidiu3,Chaput Frédéric1,Parola Stephane1ORCID

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

AbstractSynthesis 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.

Publisher

Wiley

Subject

Biomaterials,Biotechnology,General Materials Science,General Chemistry

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