Alzahrani Yahya A, Alessa Abdulmalik M, Almosaind Mona K, Alarifi Rahaf S, Alromaeh Abdulaziz, Alkahtani Masfer
Future Energy Technologies Institute, King Abdulaziz City for Science and Technology (KACST), Riyadh 11442, Saudi Arabia.
Refining Technologies and Petrochemicals Institute, King Abdulaziz City for Science and Technology (KACST), Riyadh 11442, Saudi Arabia.
Nanomaterials (Basel). 2024 Apr 16;14(8):685. doi: 10.3390/nano14080685.
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.
在这项工作中,我们展示了通过反向微乳液技术用二氧化硅(SiO₂)壳层包裹基于氟化钇锂(YLiF₄:Yb,Er)的上转换纳米晶体(UCNPs)的进展,实现了UCNPs@SiO₂核壳结构。对该方法的关键参数进行了优化,以消除无核二氧化硅颗粒的出现,并确保在UCNPs上可控地生长二氧化硅壳层厚度。该方法的最佳条件是使用6毫克UCNPs、1.5毫升Igepal CO - 520、0.25毫升氨水和50微升正硅酸四乙酯(TEOS),从而在UCNPs周围形成厚度为8纳米的均匀二氧化硅壳层。对二氧化硅包裹的UCNPs的光学特性进行了研究,证实了其固有上转换发光(UC)得以保留。此外,我们开发了一种可靠的策略来避免多个UCNPs共包裹在单个二氧化硅壳层内。在相同的二氧化硅壳层厚度和激发条件下,与未退火的颗粒相比,这种方法使退火颗粒的UC发光增强了十倍。这一显著改进解决了一个关键挑战,并扩大了所得UCNPs@SiO₂核壳结构在各个领域的适用性。