Hesse Julia, Klier Dennis T, Sgarzi Massimo, Nsubuga Anne, Bauer Christoph, Grenzer Jörg, Hübner René, Wislicenus Marcus, Joshi Tanmaya, Kumke Michael U, Stephan Holger
Institute of Radiopharmaceutical Cancer Research Helmholtz-Zentrum Dresden-Rossendorf Bautzner Landstraße 400 01328 Dresden Germany.
Institute of Chemistry (Physical Chemistry) University of Potsdam Karl-Liebknecht-Straße 24-25 14476 Potsdam Germany.
ChemistryOpen. 2018 Jan 25;7(2):159-168. doi: 10.1002/open.201700186. eCollection 2018 Feb.
We report a simple one-pot method for the rapid preparation of sub-10 nm pure hexagonal (β-phase) NaYF-based upconverting nanoparticles (UCNPs). Using Therminol 66 as a co-solvent, monodisperse UCNPs could be obtained in unusually short reaction times. By varying the reaction time and reaction temperature, it was possible to control precisely the particle size and crystalline phase of the UCNPs. The upconversion (UC) luminescence properties of the nanocrystals were tuned by varying the concentrations of the dopants (Nd and Yb sensitizer ions and Er activator ions). The size and phase-purity of the as-synthesized core and core-shell nanocrystals were assessed by using complementary transmission electron microscopy, dynamic light scattering, X-ray diffraction, and small-angle X-ray scattering studies. In-depth photophysical evaluation of the UCNPs was pursued by using steady-state and time-resolved luminescence spectroscopy. An enhancement in the UC intensity was observed if the nanocrystals, doped with optimized concentrations of lanthanide sensitizer/activator ions, were further coated with an inert/active shell. This was attributed to the suppression of surface-related luminescence quenching effects.
我们报道了一种简单的一锅法,用于快速制备尺寸小于10 nm的纯六方(β相)NaYF基上转换纳米粒子(UCNPs)。使用热传导油66作为共溶剂,可在异常短的反应时间内获得单分散的UCNPs。通过改变反应时间和反应温度,可以精确控制UCNPs的粒径和晶相。通过改变掺杂剂(Nd和Yb敏化剂离子以及Er激活剂离子)的浓度来调节纳米晶体的上转换(UC)发光特性。通过使用互补的透射电子显微镜、动态光散射、X射线衍射和小角X射线散射研究来评估合成的核和核壳纳米晶体的尺寸和相纯度。通过使用稳态和时间分辨发光光谱对UCNPs进行深入的光物理评估。如果用优化浓度的镧系敏化剂/激活剂离子掺杂的纳米晶体进一步包覆惰性/活性壳层,则会观察到UC强度增强。这归因于表面相关发光猝灭效应的抑制。