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用暗场单颗粒分光光度法对等离子体纳米粒子进行尺寸表征。

Size characterization of plasmonic nanoparticles with dark-field single particle spectrophotometry.

机构信息

Mecwins, Roda de Poniente 15, Tres Cantos, 28760, Madrid, Spain.

Departamento de Física Aplicada, Universidad Autónoma de Madrid, Campus de Cantoblanco, 28049, Madrid, Spain.

出版信息

Sci Rep. 2022 Oct 24;12(1):17231. doi: 10.1038/s41598-022-21649-8.

Abstract

Plasmonic nanoparticles are widely used in multiple scientific and industrial applications. Although many synthesis methods have been reported in the literature throughout the last decade, controlling the size and shape of large populations still remains as a challenge. As size and shape variations have a strong impact in their plasmonic properties, the need to have metrological techniques to accurately characterize their morphological features is peremptory. We present a new optical method referred as Dark-Field Single Particle Spectrophotometry which is able to measure the individual sizes of thousands of particles with nanometric accuracy in just a couple of minutes. Our method also features an easy sample preparation, a straightforward experimental setup inspired on a customized optical microscope, and a measurement protocol simple enough to be carried out by untrained technicians. As a proof of concept, thousands of spherical nanoparticles of different sizes have been measured, and after a direct comparison with metrological gold standard electron microscopy, a discrepancy of 3% has been attested. Although its feasibility has been demonstrated on spherical nanoparticles, the true strengthness of the method is that it can be generalized also to nanoparticles with arbitrary shapes and geometries, thus representing an advantageous alternative to the gold-standard electron microscopy.

摘要

等离子体纳米粒子在多个科学和工业应用中被广泛使用。尽管在过去十年的文献中已经报道了许多合成方法,但控制大量纳米粒子的尺寸和形状仍然是一个挑战。由于尺寸和形状的变化对其等离子体特性有很大的影响,因此需要有计量技术来准确地描述它们的形态特征。我们提出了一种新的光学方法,称为暗场单粒子分光光度法,它能够在短短几分钟内以纳米级的精度测量数千个粒子的个体尺寸。我们的方法还具有易于制备样品、受定制化光学显微镜启发的简单实验设置以及足够简单的测量方案,即使是非专业技术人员也可以进行操作。作为概念验证,已经测量了数千个不同尺寸的球形纳米粒子,并且与计量学的金标准电子显微镜直接比较后,证明其差异在 3%以内。尽管已经在球形纳米粒子上证明了其可行性,但该方法的真正优势在于它也可以推广到具有任意形状和几何形状的纳米粒子,因此是金标准电子显微镜的有利替代方法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/881e/9592611/5b6291e93ef1/41598_2022_21649_Fig1_HTML.jpg

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