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采用银种子介导生长法合成金纳米星。

Gold nanostar synthesis with a silver seed mediated growth method.

作者信息

Kereselidze Zurab, Romero Victor H, Peralta Xomalin G, Santamaria Fidel

机构信息

Department of Physics and Astronomy, The University of Texas at San Antonio, USA.

出版信息

J Vis Exp. 2012 Jan 15(59):3570. doi: 10.3791/3570.

Abstract

The physical, chemical and optical properties of nano-scale colloids depend on their material composition, size and shape. There is a great interest in using nano-colloids for photo-thermal ablation, drug delivery and many other biomedical applications. Gold is particularly used because of its low toxicity. A property of metal nano-colloids is that they can have a strong surface plasmon resonance. The peak of the surface plasmon resonance mode depends on the structure and composition of the metal nano-colloids. Since the surface plasmon resonance mode is stimulated with light there is a need to have the peak absorbance in the near infrared where biological tissue transmissivity is maximal. We present a method to synthesize star shaped colloidal gold, also known as star shaped nanoparticles or nanostars. This method is based on a solution containing silver seeds that are used as the nucleating agent for anisotropic growth of gold colloids. Scanning electron microscopy (SEM) analysis of the resulting gold colloid showed that 70 % of the nanostructures were nanostars. The other 30 % of the particles were amorphous clusters of decahedra and rhomboids. The absorbance peak of the nanostars was detected to be in the near infrared (840 nm). Thus, our method produces gold nanostars suitable for biomedical applications, particularly for photo-thermal ablation.

摘要

纳米级胶体的物理、化学和光学性质取决于其材料组成、尺寸和形状。人们对将纳米胶体用于光热消融、药物递送和许多其他生物医学应用有着浓厚的兴趣。由于金的低毒性,它被特别使用。金属纳米胶体的一个特性是它们可以具有强烈的表面等离子体共振。表面等离子体共振模式的峰值取决于金属纳米胶体的结构和组成。由于表面等离子体共振模式是由光激发的,因此需要在生物组织透射率最大的近红外区域有峰值吸光度。我们提出了一种合成星形胶体金的方法,也称为星形纳米颗粒或纳米星。该方法基于一种含有银种子的溶液,银种子用作金胶体各向异性生长的成核剂。对所得金胶体的扫描电子显微镜(SEM)分析表明,70%的纳米结构是纳米星。其余30%的颗粒是十面体和菱形的无定形聚集体。检测到纳米星的吸光度峰值在近红外区域(840nm)。因此,我们的方法生产出适用于生物医学应用,特别是光热消融的金纳米星。

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