首页> 外文期刊>Journal of nanoparticle research: An interdisciplinary forum for nanoscale science and technology >Formation mechanism of CdS nanoparticles with tunable luminescence via a non-ionic microemulsion route
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Formation mechanism of CdS nanoparticles with tunable luminescence via a non-ionic microemulsion route

机译:通过非离子微乳液途径形成可调节发光的CdS纳米粒子的形成机理

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摘要

We investigated the synthesis of CdS nanoparticles via an optimized water-in-oil microemulsion route that used the non-ionic surfactant-based system H_2O-n-octane-Brij30/1-octanol. For that purpose, a microemulsion that contained Cd(II) ions (μe1) and another microemulsion that contained S2- ions (μe2) were combined. To investigate the ways in which the non-ionic microemulsion characteristics controlled the size and emission properties of colloidal CdS quantum dots, μe1 and μe2 with tunable and robust similar structure were prepared. This requirement was fulfilled by matching the water emulsification failure boundary (wefb) of the two microemulsions and carrying out synthesis along this boundary. Dynamic light scattering and fluorescence probe techniques were used to investigate the size and interfacial organization of the microemulsion water droplets, and the CdS nanoparticles were characterized by UV-Vis and static fluorescence spectrometry, TEM and HRTEM. Nanoparticles of diameter 4.5-5.5 nm exhibiting enhanced band edge emission were produced by increasing the water content of the precursor microemulsions. The experimental results were combined with a Monte Carlo simulation approach to demonstrate that growth via coagulation of seed nuclei represented the driving mechanism for the CdS nanoparticle formation in the water-in-oil microemulsion.
机译:我们研究了通过使用非离子表面活性剂为基础的系统H_2O-正辛烷-Brij30 / 1-辛醇的优化油包水微乳液路线合成CdS纳米粒子。为此,将包含Cd(II)离子(μe1)的微乳液和包含S2-离子(μe2)的另一种微乳液合并在一起。为了研究非离子微乳液特性控制胶体CdS量子点尺寸和发射特性的方式,制备了具有可调且坚固的相似结构的μe1和μe2。通过匹配两种微乳液的水乳化破坏边界(wefb)并沿该边界进行合成,可以满足此要求。使用动态光散射和荧光探针技术研究微乳液水滴的大小和界面组织,并通过紫外可见光谱和静态荧光光谱,TEM和HRTEM对CdS纳米颗粒进行表征。通过增加前体微乳状液的水含量产生直径为4.5-5.5nm的纳米颗粒,其显示出增强的带边缘发射。实验结果与蒙特卡洛模拟方法相结合,证明通过种子核凝结生长代表了油包水微乳液中CdS纳米颗粒形成的驱动机制。

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