Department of Chemistry , Rice University , 6100 S Main Street Houston , Texas 77005 , United States.
Langmuir. 2019 Jul 30;35(30):9777-9784. doi: 10.1021/acs.langmuir.9b00794. Epub 2019 Jul 19.
Gold nanoprisms (AuNPRs) are anisotropic nanostructures that have gained great attention in recent years because of their interesting and unique optical properties that can be tailored for biomedical, energy, and sensing applications. At present, several protocols have reported the high yield synthesis of AuNPRs of different dimensions using a seed-mediated approach. However, there is a need to develop reproducible and scalable methods with the goal of a controllable synthesis. Here, we report an improved seed-mediated synthesis of small monodisperse AuNPRs of distinct sizes in high yield using poly(vinylpyrrolidone) (PVP) as an additive in nanomolar concentrations. We show optimal synthetic parameters for a blue-shifting of the surface plasmon resonance band which correlates with the reduction in the edge length () of AuNPRs from 75 to 35 nm. Using measured extinction coefficients for AuNPRs of different sizes, a linear equation is proposed to estimate the concentration of unknown samples by using Beer's law. Interestingly, the use of nanomolar amounts of PVP during the growth of AuNPRs significantly improves the shape yield. The surface chemistry properties of AuNPRs were measured by X-ray photoelectron spectroscopy and attenuated total reflectance infrared spectroscopy and revealed that PVP chains interact with AuNPRs through the carbonyl oxygen. This method is reproducible and scalable and enables the synthesis of AuNPRs with long-term shape stability (1 year) in aqueous solution.
金纳米棒(AuNPRs)是各向异性的纳米结构,由于其有趣且独特的光学特性,在生物医学、能源和传感应用中受到了广泛关注。目前,已有几种方案报道了使用种子介导法高产率合成不同尺寸的 AuNPRs。然而,需要开发可重复和可扩展的方法,以实现可控合成。在这里,我们报告了一种使用聚(N-乙烯基吡咯烷酮)(PVP)作为添加剂在纳摩尔浓度下高产率合成小单分散 AuNPRs 的改进种子介导合成方法。我们展示了最优的合成参数,可使表面等离子体共振带发生蓝移,这与 AuNPRs 的边缘长度()从 75nm 减小到 35nm 相关。通过测量不同尺寸 AuNPRs 的消光系数,提出了一个线性方程,可用于通过比尔定律估计未知样品的浓度。有趣的是,在 AuNPRs 生长过程中使用纳摩尔量的 PVP 可显著提高形状产率。AuNPRs 的表面化学性质通过 X 射线光电子能谱和衰减全反射红外光谱进行了测量,结果表明 PVP 链通过羰基氧与 AuNPRs 相互作用。该方法具有可重复性和可扩展性,能够在水溶液中合成具有长期形状稳定性(1 年)的 AuNPRs。