Preparation and Characterization of Uniform and Controlled Silica Encapsulating on Lithium Yttrium Fluoride-Based Upconversion Nanoparticles

In this work, we present an advancement in the encapsulation of lithium yttrium fluoride-based (YLiF :Yb,Er) upconversion nanocrystals (UCNPs) with silica (SiO ) shells through a reverse microemulsion technique, achieving UCNPs@SiO core/shell structures. Key parameters of this approach were optimize...

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Veröffentlicht in:Nanomaterials (Basel, Switzerland) Switzerland), 2024-04, Vol.14 (8), p.685
Hauptverfasser: Alzahrani, Yahya A, Alessa, Abdulmalik M, Almosaind, Mona K, Alarifi, Rahaf S, Alromaeh, Abdulaziz, Alkahtani, Masfer
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Sprache:eng
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Zusammenfassung:In this work, we present an advancement in the encapsulation of lithium yttrium fluoride-based (YLiF :Yb,Er) upconversion nanocrystals (UCNPs) with silica (SiO ) shells through a reverse microemulsion technique, achieving UCNPs@SiO core/shell structures. Key parameters of this approach were optimized to eliminate the occurrence of core-free silica particles and ensure a controlled silica shell thickness growth on the UCNPs. The optimal conditions for this method were using 6 mg of UCNPs, 1.5 mL of Igepal CO-520, 0.25 mL of ammonia, and 50 μL of tetraethyl orthosilicate (TEOS), resulting in a uniform silica shell around UCNPs with a thickness of 8 nm. The optical characteristics of the silica-encased UCNPs were examined, confirming the retention of their intrinsic upconversion luminescence (UC). Furthermore, we developed a reliable strategy to avoid the coencapsulation of multiple UCNPs within a single silica shell. This approach led to a tenfold increase in the UC luminescence of the annealed particles compared to their nonannealed counterparts, under identical silica shell thickness and excitation conditions. This significant improvement addresses a critical challenge and amplifies the applicability of the resulting UCNPs@SiO core/shell structures in various fields.
ISSN:2079-4991
2079-4991
DOI:10.3390/nano14080685