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通过金属纳米结构的声学振动来表征其尺寸和形状。

Characterising the size and shape of metallic nano-structures by their acoustic vibrations.

作者信息

Fuentes-Domínguez Rafael, Naznin Shakila, Marques Leonel, Pérez-Cota Fernando, Smith Richard J, Clark Matt

机构信息

Optics and Photonics Group, Faculty of Engineering, University of Nottingham, University Park, NG7 2RD, Nottingham, UK.

出版信息

Nanoscale. 2020 Jul 14;12(26):14230-14236. doi: 10.1039/d0nr03410j. Epub 2020 Jul 1.

Abstract

The characterisation of metallic nano-structures is of great importance as their optical properties are strongly dependent on their size and shape. Inaccurate size or shape characterisation can result in misleading measurements in applications such as bio-imaging and sensing. Characterisation techniques such as dynamic light scattering, electron microscopy or atomic force microscopy are commonly used; however, performing sub-surface measurements (inside semi-transparent objects) or in liquid media are very challenging. Here, we use time-resolved pump-probe spectroscopy to characterise the size and shape of metallic nano-structures in a water surrounding medium by using their vibrational modes. We show that this technique can achieve size measurements with a precision of 3 nm for the largest nano-structures which are in agreement with electron microscopy images. Furthermore, we demonstrate the ability to probe individual nano-structures despite being located in the same optical point spread function (PSF). Combining the high precision and sub-optical measurements provided by this technique with the ability to insert metallic nano-structures inside biological samples might open a way to perform 3D characterisation measurements.

摘要

金属纳米结构的表征非常重要,因为它们的光学性质强烈依赖于其尺寸和形状。尺寸或形状表征不准确会导致在生物成像和传感等应用中出现误导性测量结果。通常使用动态光散射、电子显微镜或原子力显微镜等表征技术;然而,进行亚表面测量(在半透明物体内部)或在液体介质中进行测量极具挑战性。在此,我们使用时间分辨泵浦 - 探测光谱通过金属纳米结构的振动模式来表征其在水基周围介质中的尺寸和形状。我们表明,对于最大的纳米结构,该技术能够实现精度为3纳米的尺寸测量,这与电子显微镜图像一致。此外,我们证明了尽管位于相同的光学点扩散函数(PSF)内,仍能够探测单个纳米结构。将该技术提供的高精度和亚光学测量与将金属纳米结构插入生物样品内部的能力相结合,可能为进行三维表征测量开辟一条道路。

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