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A new route to gold nanoflowers

机译:金纳米锤子的新途径

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摘要

Catanionic vesicles spontaneously formed by mixing the anionic surfactant bis(2-ethylhexyl)sulfosuccinate sodium salt with the cationic surfactant cetyltrimethylammonium bromide were used as a reducing medium to produce gold clusters, which are embedded and well-ordered into the template phase. The gold clusters can be used as seeds in the growth process that follows by adding ascorbic acid as a mild reducing component. When the ascorbic acid was added very slowly in an ice bath round-edged gold nanoflowers were produced. When the same experiments were performed at room temperature in the presence of Ag+ ions, sharp-edged nanoflowers could be synthesized. The mechanism of nanoparticle formation can be understood to be a non-diffusion-limited Ostwald ripening process of preordered gold nanoparticles embedded in catanionic vesicle fragments. Surface-enhanced Raman scattering experiments show an excellent enhancement factor of 1.7 . 10(5) for the nanoflowers deposited on a silicon wafer.
机译:通过将阴离子表面活性剂双(2-乙基己基)磺基琥珀酸钙溴化钠混合通过混合阴离子表面活性剂双(2-乙基己基)磺基铵溴化铵而自发地形成的集成囊泡用作还原介质,以产生金簇,其嵌入和良好地进入模板阶段。 通过将抗坏血酸作为轻度还原组分添加抗坏血酸,金簇可以用作种子。 当在冰浴中非常缓慢地加入抗坏血酸时,制备圆形覆盖的金纳米锭剂。 当在Ag +离子存在下在室温下进行相同的实验时,可以合成尖锐的纳米锭剂。 纳米粒子形成的机制可以理解为是预购的金纳米颗粒的非扩散限制骨瓦熟化过程,其嵌入在嵌入式囊泡片段中。 表面增强的拉曼散射实验显示出优异的增强因子为1.7。 10(5)对于沉积在硅晶片上的纳米轧机。

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