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Chrominance to Dimension: A Real-Time Method for Measuring the Size of Single Gold Nanoparticles

机译:色度到尺寸:测量单个金纳米粒子尺寸的实时方法

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Noble metal nanoparticles have excellent optical and chemical properties and are widely used in optics, sensors, and biomedicines. The inherent characteristics of metal nanoparticles, particularly their size, play important roles in their applications. The ability to readily measure the size of single nanomaterials on-site is crucial to the rapid development of single-particle sensors. In this study, we developed a facile and real-time method for estimating the diameter of single gold nanoparticles (GNPs) that range from 35 to 110 nm in diameter; this technique uses the chrominance of the GNP's plasmon resonance scattering light that is captured by a dark-field microscope (DFM). The RGB (three primary colors, red, green, and blue) chrominance information from the dark-field image can be directly converted into the diameters of the GNPs using the relationship between the particle size and the scattering light peak wavelength; this conversion was carried out using Matlab program based on an RGB-To-Wavelength (RTW) process. This approach is more convenient, less time-consuming, and enables observation under arbitrary conditions compared to the scanning electron microscopy (SEM) technique. The differences between the diameters of the GNPs that were calculated using this method and those that were measured using SEM were less than 5 nm. The RTW method has also been applied in the monitoring of the refractive index of the media surrounding the GNPs, and their dynamic acting within cells in real-time.
机译:贵金属纳米粒子具有出色的光学和化学性质,被广泛用于光学,传感器和生物医学中。金属纳米粒子的固有特性,尤其是其尺寸,在其应用中起着重要作用。能够随时现场测量单个纳米材料尺寸的能力对于快速开发单颗粒传感器至关重要。在这项研究中,我们开发了一种简便而实时的方法来估算直径为35至110 nm的单个金纳米颗粒(GNP)的直径。这项技术使用了由暗场显微镜(DFM)捕获的GNP等离子体激元共振散射光的色度。暗场图像中的RGB(三种原色,红色,绿色和蓝色)色度信息可以使用颗粒大小和散射光峰值波长之间的关系直接转换为GNP的直径。使用基于RGB到波长(RTW)程序的Matlab程序进行此转换。与扫描电子显微镜(SEM)技术相比,此方法更方便,更省时间,并且可以在任意条件下进行观察。使用此方法计算的GNP直径与使用SEM测量的GNP直径之间的差异小于5 nm。 RTW方法也已应用于实时监测GNP周围介质的折射率及其在细胞内的动态作用。

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