Xiao Qi, Xiao Chong
School of Resources Processing and Bioengineering, Central South University, 410083 Changsha, China.
Nanoscale Res Lett. 2009 Jun 20;4(9):1078-1084. doi: 10.1007/s11671-009-9356-0.
Bifunctional magnetic-fluorescent composite nanoparticles (MPQDs) with Fe(3)O(4) MPs and Mn:ZnS/ZnS core-shell quantum dots (QDs) encapsulated in silica spheres were synthesized through reverse microemulsion method and characterized by X-ray powder diffraction, scanning electron microscopy, transmission electron microscopy, vibration sample magnetometer, and photoluminescence (PL) spectra. Our strategy could offer the following features: (1) the formation of Mn:ZnS/ZnS core/shell QDs resulted in enhancement of the PL intensity with respect to that of bare Mn:ZnS nanocrystals due to the effective elimination of the surface defects; (2) the magnetic nanoparticles were coated with silica, in order to reduce any detrimental effects on the QD PL by the magnetic cores; and (3) both Fe(3)O(4) MPs and Mn:ZnS/ZnS core-shell QDs were encapsulated in silica spheres, and the obtained MPQDs became water soluble. The experimental conditions for the silica coating on the surface of Fe(3)O(4) nanoparticles, such as the ratio of water to surfactant (R), the amount of ammonia, and the amount of tetraethoxysilane, on the photoluminescence properties of MPQDs were studied. It was found that the silica coating on the surface of Fe(3)O(4) could effectively suppress the interaction between the Fe(3)O(4) and the QDs under the most optimal parameters, and the emission intensity of MPQDs showed a maximum. The bifunctional MPQDs prepared under the most optimal parameters have a typical diameter of 35 nm and a saturation magnetization of 4.35 emu/g at room temperature and exhibit strong photoluminescence intensity.
通过反相微乳液法合成了一种双功能磁性荧光复合纳米粒子(MPQDs),该粒子由Fe(3)O(4)磁性粒子和包裹在二氧化硅球中的Mn:ZnS/ZnS核壳量子点(QDs)组成,并通过X射线粉末衍射、扫描电子显微镜、透射电子显微镜、振动样品磁强计和光致发光(PL)光谱对其进行了表征。我们的策略具有以下特点:(1)Mn:ZnS/ZnS核壳量子点的形成有效消除了表面缺陷,从而使PL强度相对于裸露的Mn:ZnS纳米晶体有所增强;(2)磁性纳米粒子被二氧化硅包覆,以减少磁芯对量子点PL的任何有害影响;(3)Fe(3)O(4)磁性粒子和Mn:ZnS/ZnS核壳量子点都被包裹在二氧化硅球中,所得的MPQDs具有水溶性。研究了Fe(3)O(4)纳米粒子表面二氧化硅包覆的实验条件,如水与表面活性剂的比例(R)、氨的用量和四乙氧基硅烷的用量,对MPQDs光致发光性能的影响。结果发现,在最优化的参数下,Fe(3)O(4)表面的二氧化硅包覆能够有效抑制Fe(3)O(4)与量子点之间的相互作用,MPQDs的发射强度达到最大值。在最优化参数下制备的双功能MPQDs典型直径为35 nm,室温下饱和磁化强度为4.35 emu/g,并且表现出很强的光致发光强度。