Beijing Key Laboratory of Nanophotonics and Ultrafine Optoelectronic Systems, School of Materials Science & Engineering, Beijing Institute of Technology, 5 Zhongguancun South Street, Haidian District, Beijing, 100081, Peoples' Republic of China.
Langmuir. 2013 Feb 12;29(6):1970-6. doi: 10.1021/la304458q. Epub 2013 Feb 1.
The ability to tune the size, shape, and properties of supraparticles is of great importance for fundamental study as well as their promising applications. We previously developed a method to synthesize monodisperse ZnSe supraparticles via "in situ aggregation" of ZnSe nanoparticles through a simple hot-injection method. In the present work, we show that the "in situ aggregation" strategy can be extended to tune the shapes of ZnSe supraparticles, and introduce novel functional magnetic and luminescence properties. Shape control is manipulated with oleic acid as ligands, which balances the attractive interparticles van der Waals forces and steric repulsive forces from the ligands. With the increase of oleic acid concentration, a morphology change from microspheres to asymmetrical multimer and three-dimensional nanoflowers was observed. "Doping" preformed Fe(3)O(4) nanoparticles into ZnSe supraparticles endow them with magnetic properties. The magnetism of these Fe(3)O(4)@ZnSe supraparticles depends on the dosage of dopant. Doping of preformed CdS nanocrystals was also studied, resulting in emissive hybrid CdS@ZnSe supraparticles with diameters of 50-100 nm. It is noted that the doping of Fe(3)O(4) and CdS nanoparticles show differing morphologies. The differences can be explained by variance in the lattice mismatches which leads to differing potentials for crystal growth.
调控超粒子的尺寸、形状和性质对于基础研究以及其潜在应用都具有重要意义。我们之前开发了一种通过简单的热注入方法,通过“原位聚集”ZnSe 纳米粒子来合成单分散 ZnSe 超粒子的方法。在本工作中,我们表明“原位聚集”策略可以扩展到调控 ZnSe 超粒子的形状,并引入新的功能磁性和发光性质。通过油酸作为配体来控制形状,这平衡了粒子间的吸引力范德华力和配体的空间位阻排斥力。随着油酸浓度的增加,观察到从微球到不对称多聚体和三维纳米花的形态变化。将预先形成的 Fe(3)O(4)纳米粒子“掺杂”到 ZnSe 超粒子中,赋予它们磁性。这些 Fe(3)O(4)@ZnSe 超粒子的磁性取决于掺杂剂的用量。也研究了预先形成的 CdS 纳米晶的掺杂,得到了直径为 50-100nm 的发射性混合 CdS@ZnSe 超粒子。值得注意的是,Fe(3)O(4)和 CdS 纳米粒子的掺杂表现出不同的形态。这种差异可以通过晶格失配的差异来解释,这导致了不同的晶体生长势。