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通过透射电子显微镜图像的无监督机器学习实现纳米颗粒的统计代表性计量学

Statistically Representative Metrology of Nanoparticles via Unsupervised Machine Learning of TEM Images.

作者信息

Wen Haotian, Luna-Romera José María, Riquelme José C, Dwyer Christian, Chang Shery L Y

机构信息

School of Materials Science and Engineering, University of New South Wales, Sydney, NSW 2052, Australia.

Software and Computing Systems, Universidad de Sevilla, 41004 Seville, Spain.

出版信息

Nanomaterials (Basel). 2021 Oct 14;11(10):2706. doi: 10.3390/nano11102706.

Abstract

The morphology of nanoparticles governs their properties for a range of important applications. Thus, the ability to statistically correlate this key particle performance parameter is paramount in achieving accurate control of nanoparticle properties. Among several effective techniques for morphological characterization of nanoparticles, transmission electron microscopy (TEM) can provide a direct, accurate characterization of the details of nanoparticle structures and morphology at atomic resolution. However, manually analyzing a large number of TEM images is laborious. In this work, we demonstrate an efficient, robust and highly automated unsupervised machine learning method for the metrology of nanoparticle systems based on TEM images. Our method not only can achieve statistically significant analysis, but it is also robust against variable image quality, imaging modalities, and particle dispersions. The ability to efficiently gain statistically significant particle metrology is critical in advancing precise particle synthesis and accurate property control.

摘要

纳米颗粒的形态决定了它们在一系列重要应用中的性能。因此,在实现对纳米颗粒性能的精确控制方面,将这个关键的颗粒性能参数进行统计关联的能力至关重要。在用于纳米颗粒形态表征的几种有效技术中,透射电子显微镜(TEM)能够在原子分辨率下直接、准确地表征纳米颗粒结构和形态的细节。然而,手动分析大量的TEM图像非常费力。在这项工作中,我们展示了一种基于TEM图像的用于纳米颗粒系统计量的高效、稳健且高度自动化的无监督机器学习方法。我们的方法不仅能够实现具有统计学意义的分析,而且对于可变的图像质量、成像方式和颗粒分散性也具有稳健性。有效获得具有统计学意义的颗粒计量的能力对于推进精确的颗粒合成和准确的性能控制至关重要。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f1dc/8539342/b7bd78f98d97/nanomaterials-11-02706-g001.jpg

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