School of Chemistry, Physics and Mechanical Engineering, Queensland University of Technology, Brisbane, Queensland 4001, Australia.
Langmuir. 2013 Jan 15;29(2):525-33. doi: 10.1021/la304034b. Epub 2013 Jan 2.
In the past few years, remarkable progress has been made in unveiling novel and unique optical properties of strongly coupled plasmonic nanostructures. However, the application of such plasmonic nanostructures in biomedicine remains challenging because of the lack of facile and robust assembly methods for producing stable nanostructures. Previous attempts to achieve plasmonic nanoassemblies using molecular ligands were limited by the lack of flexibility that could be exercised in forming them. Here, we report the utilization of tailor-made hyperbranched polymers (HBP) as linkers to assemble gold nanoparticles (NPs) into nanoassemblies. The ease and flexibility in tuning the particle size and number of branch ends of an HBP make it an ideal candidate as a linker, as opposed to DNA, small organic molecules, and linear or dendrimeric polymers. We report a strong correlation of polymer (HBP) concentration with the size of the hybrid nanoassemblies and "hot-spot" density. We have shown that such solutions of stable HBP-gold nanoassemblies can be barcoded with various Raman tags to provide improved surface-enhanced Raman scattering (SERS) compared to that of nonaggregated NP systems. These Raman-barcoded hybrid nanoassemblies, with further optimization of the NP shape, size, and hot-spot density, may find application as diagnostic tools in nanomedicine.
在过去的几年中,人们在揭示强耦合等离子体纳米结构的新颖独特的光学特性方面取得了显著的进展。然而,由于缺乏生产稳定纳米结构的简便、强大的组装方法,此类等离子体纳米结构在生物医学中的应用仍然具有挑战性。以前使用分子配体来实现等离子体纳米组装的尝试受到其形成时缺乏灵活性的限制。在这里,我们报告了使用定制的超支化聚合物 (HBP) 作为链接物将金纳米颗粒 (NPs) 组装成纳米组装体。HBP 易于调整颗粒尺寸和支化末端数量,使其成为链接物的理想候选物,而不是 DNA、小分子、线性或树状聚合物。我们报告了聚合物 (HBP) 浓度与混合纳米组装体的尺寸和“热点”密度之间的强相关性。我们已经表明,与非聚集 NP 系统相比,这种稳定的 HBP-金纳米组装体溶液可以用各种拉曼标记进行标记,从而提供增强的表面增强拉曼散射 (SERS)。这些拉曼编码的混合纳米组装体,如果进一步优化 NP 的形状、尺寸和热点密度,可能会作为纳米医学中的诊断工具得到应用。