Xu Hanyu, Li Kejie, Dai Mengmeng, Fu Zuoling
Key Laboratory of Physics and Technology for Advanced Batteries, College of Physics, Jilin University, Changchun 130012, China.
Key Laboratory of Physics and Technology for Advanced Batteries, College of Physics, Jilin University, Changchun 130012, China.
J Colloid Interface Sci. 2024 Nov;673:249-257. doi: 10.1016/j.jcis.2024.06.071. Epub 2024 Jun 9.
Research on the core-shell design of rare earth-doped nanoparticles has recently gained significant attention, particularly in exploring the synergistic effects of combining active and inert shell layers. In this study, we successfully synthesized 8 types of spherical core-shell Na-based nanoparticles to enhance the efficiency of core-shell design in upconversion luminescence and temperature sensing through the strategic arrangement of inert and active layers. The most effective upconversion luminescence was observed under 980 nm and 808 nm laser excitation using NaYF inert shell NaYF:Yb, Er@ NaYF and NaYF@ NaYF4:Yb, Nd core-shell nanostructures. Moreover, the incorporation of the NaYbF active shell structure led to a significant increase in relative sensitivity in ratio luminescence thermometry. Notably, the NaYF:Yb, Nd, Er@ NaYbF core-shell structure demonstrated the highest relative sensitivity of 1.12 %K. This research underscores the crucial role of inert shell layers in enhancing upconversion luminescence in core-shell structure design, while active layers play a key role in achieving high-sensitivity temperature detection capabilities.
最近,稀土掺杂纳米粒子的核壳设计研究受到了广泛关注,尤其是在探索活性和惰性壳层结合的协同效应方面。在本研究中,我们成功合成了8种球形核壳钠基纳米粒子,通过惰性层和活性层的策略性排列,提高了核壳设计在上转换发光和温度传感方面的效率。使用NaYF惰性壳NaYF:Yb, Er@NaYF和NaYF@NaYF4:Yb, Nd核壳纳米结构,在980nm和808nm激光激发下观察到了最有效的上转换发光。此外,NaYbF活性壳结构的引入导致比率发光测温法中的相对灵敏度显著提高。值得注意的是,NaYF:Yb, Nd, Er@NaYbF核壳结构表现出最高的相对灵敏度,为1.12%K。本研究强调了惰性壳层在核壳结构设计中增强上转换发光的关键作用,而活性层在实现高灵敏度温度检测能力方面发挥着关键作用。