La Porta Andrea, Sánchez-Iglesias Ana, Altantzis Thomas, Bals Sara, Grzelczak Marek, Liz-Marzán Luis M
Bionanoplasmonics Laboratory, CIC biomaGUNE, Paseo de Miramón 182, 20009 Donostia - San Sebastián, Spain.
Nanoscale. 2015 Jun 21;7(23):10377-81. doi: 10.1039/c5nr01264c.
We present a simple method for the co-encapsulation of gold nanostars and iron-oxide nanoparticles into hybrid colloidal composites that are highly responsive to both light and external magnetic fields. Self-assembly was driven by hydrophobic interactions between polystyrene capped gold nanostars and iron oxide nanocrystals stabilized with oleic acid, upon addition of water. A block copolymer was then used to encapsulate the resulting spherical colloidal particle clusters, which thereby became hydrophilic. Electron microscopy analysis unequivocally shows that each composite particle comprises a single Au nanostar surrounded by a few hundreds of iron oxide nanocrystals. We demonstrate that this hybrid colloidal system can be used as an efficient substrate for surface enhanced Raman scattering, using common dyes as model molecular probes. The co-encapsulation of iron oxide nanoparticles renders the system magnetically responsive, so that application of an external magnetic field leads to particle accumulation and limits of detection are in the nM range.
我们提出了一种将金纳米星和氧化铁纳米颗粒共包封到对光和外部磁场都具有高度响应性的混合胶体复合材料中的简单方法。在加入水后,聚苯乙烯包覆的金纳米星与用油酸稳定的氧化铁纳米晶体之间的疏水相互作用驱动了自组装过程。然后使用嵌段共聚物来包封所得的球形胶体颗粒簇,从而使其具有亲水性。电子显微镜分析明确表明,每个复合颗粒都包含一个被数百个氧化铁纳米晶体包围的单个金纳米星。我们证明,使用常见染料作为模型分子探针,这种混合胶体系统可以用作表面增强拉曼散射的有效基质。氧化铁纳米颗粒的共包封使该系统具有磁响应性,因此施加外部磁场会导致颗粒聚集,检测限在纳摩尔范围内。