Gao Rongyao, Li Yuqian, Zhang Yuhang, Fu Limin, Li Luoyuan
Laboratory of Advanced Light Conversion Materials and Biophotonics, School of Chemistry and Life Resource, Renmin University of China, Beijing 100872, China.
The Eighth Affiliated Hospital, Sun Yat-sen University, Shenzhen 518033, China.
Nanomaterials (Basel). 2024 Dec 7;14(23):1969. doi: 10.3390/nano14231969.
The performance optimization of photoluminescent (PL) materials is a hot topic in the field of applied materials research. There are many different crystal defects in photoluminescent materials, which can have a significant impact on their optical properties. The luminescent properties and chemical stability of materials can be effectively improved by adjusting lattice defects in crystals. We systematically studied the effect of doping ions on the energy transfer upconversion mechanism in different defect crystals by changing the matrix alkali metal ions. Meanwhile, the influence mechanism of crystal defect distribution on luminescence performance is explored by adjusting the ratio of Na-Li. The PL spectra indicate that changing the alkaline ions significantly affects the luminescence performance and efficiency of UCNPs. The change in ion radius leads to substitution or gap changes in the main lattice, which may alter the symmetry and strength of the crystal field around doped RE ions, thereby altering the UCL performance. Additionally, we demonstrated the imaging capabilities of the synthesized upconversion nanoparticles (UCNPs) in cellular environments using fluorescence microscopy. The results revealed that NaLiLuF-Yb, Er nanoparticles exhibited significantly enhanced fluorescence intensity in cell imaging compared to other compositions. We further investigated the mechanism by which structural defects formed by doping ions in UCNPs with different alkali metals affect energy transfer upconversion (ETU). This work emphasizes the importance of defect regulation in the ETU mechanism to improve the limitations of crystal structure on the luminescence performance and promote the future application of upconversion nanomaterials, which will provide important theoretical references for the exploration of high-performance luminescent materials in the future.
光致发光(PL)材料的性能优化是应用材料研究领域的一个热门话题。光致发光材料中存在许多不同的晶体缺陷,这对其光学性能会产生重大影响。通过调整晶体中的晶格缺陷,可以有效提高材料的发光性能和化学稳定性。我们通过改变基质碱金属离子,系统地研究了掺杂离子对不同缺陷晶体中能量转移上转换机制的影响。同时,通过调整Na-Li的比例,探索了晶体缺陷分布对发光性能的影响机制。PL光谱表明,改变碱性离子会显著影响上转换纳米粒子(UCNPs)的发光性能和效率。离子半径的变化导致主晶格的替代或间隙变化,这可能会改变掺杂稀土离子周围晶体场的对称性和强度,从而改变上转换发光性能。此外,我们使用荧光显微镜展示了合成的上转换纳米粒子(UCNPs)在细胞环境中的成像能力。结果表明,与其他组成相比,NaLiLuF-Yb,Er纳米粒子在细胞成像中表现出显著增强的荧光强度。我们进一步研究了不同碱金属掺杂的UCNPs中掺杂离子形成的结构缺陷影响能量转移上转换(ETU)的机制。这项工作强调了在ETU机制中缺陷调控对于改善晶体结构对发光性能的限制以及促进上转换纳米材料未来应用的重要性,这将为未来高性能发光材料的探索提供重要的理论参考。