Materials Sciences Division, Lawrence Berkeley National Laboratory , Berkeley, California 94720, United States.
Kavli Energy NanoScience Institute , Berkeley, California 94720, United States.
J Am Chem Soc. 2017 Sep 6;139(35):12325-12332. doi: 10.1021/jacs.7b07496. Epub 2017 Aug 25.
Precise morphology and composition control is vital for designing multifunctional lanthanide-doped core/shell nanocrystals. Herein, we report controlled isotropic and anisotropic shell growth techniques in hexagonal sodium rare-earth tetrafluoride (β-NaLnF) nanocrystals by exploiting the kinetics of the shell growth. A drastic change of the shell morphology was observed by changing the injection rate of the shell precursors while keeping all other reaction conditions constant. We obtained isotropic shell growth for fast sequential injection and a preferred growth of the shell layers along the crystal's c-axis [001] for slow dropwise injection. Using this slow shell growth technique, we have grown rod-like shells around different almost spherical core nanocrystals. Bright and efficient upconversion was measured for both isotropic and rod-like shells around β-NaYF nanocrystals doped with Yb/Er and Yb/Tm. Photoluminescence upconversion quantum yield and lifetime measurements reveal the high quality of the core/shell nanocrystal. Furthermore, multishell rod-like nanostructures have been prepared with optically active cores and tips separated by an inert intermediate shell layer. The controlled anisotropic shell growth allows the design of new core/multishell nanostructures and enables independent investigations of the chemistry and physics of different nanocrystal facets.
精确的形态和组成控制对于设计多功能镧系掺杂核/壳纳米晶体至关重要。在此,我们通过利用壳生长的动力学,报道了在六方型钠稀土四氟化物(β-NaLnF)纳米晶体中进行各向同性和各向异性壳生长的控制技术。通过改变壳前体的注入速率,同时保持所有其他反应条件不变,观察到壳形态的剧烈变化。我们获得了各向同性壳生长的快速连续注入和沿晶体 c 轴 [001] 的壳层优先生长的缓慢滴注。使用这种缓慢的壳生长技术,我们在不同的几乎球形核纳米晶体周围生长了棒状壳。在掺杂 Yb/Er 和 Yb/Tm 的β-NaYF 纳米晶体的各向同性和棒状壳周围,都测量到了明亮高效的上转换。光致发光上转换量子产率和寿命测量表明了核/壳纳米晶体的高质量。此外,还制备了具有光学活性核和由惰性中间壳层隔开的尖端的多壳棒状纳米结构。控制各向异性壳生长允许设计新的核/多壳纳米结构,并能够独立研究不同纳米晶体面的化学和物理性质。