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利用新开发的三维阻抗扫描电子显微镜对生物和乳液样品进行观察。

Observation of biological and emulsion samples by newly developed three-dimensional impedance scanning electron microscopy.

作者信息

Ogura Toshihiko, Okada Tomoko

机构信息

Health and Medical Research Institute, National Institute of Advanced Industrial Science and Technology (AIST), Central 6, Higashi, Tsukuba, Ibaraki 305-8566, Japan.

出版信息

Comput Struct Biotechnol J. 2024 Nov 12;23:4064-4076. doi: 10.1016/j.csbj.2024.11.023. eCollection 2024 Dec.

Abstract

Imaging at nanometre-scale resolution is indispensable for many scientific fields such as biology, chemistry, material science and nanotechnology. Scanning electron microscopes (SEM) are widely used as important tools for the nanometre-scale analysis of various samples. However, because of the vacuum inside the SEM, a typical analysis requires fixation of samples, a drying process, and staining with heavy metals. Therefore, there is a need for convenient and minimally invasive methods of observing samples in solution. Recently, we have developed a new type of impedance microscopy, multi-frequency impedance SEM (IP-SEM), which allows nanoscale imaging of various specimens in water with minimal radiation damage. Here, we report a new IP-SEM system equipped with a linear-array terminal, which allows eight tilted images to be observed in a single capture by applying eight frequencies of input signals to each electrode. Furthermore, we developed a three-dimensional (3D) reconstruction method based on the Simulated Annealing (SA) algorithm, which enables us to construct a high-precision 3D model from the 8 tilted images. The method reported here can be easily used for 3D structural analysis of various biological samples, organic materials, and nanoparticles.

摘要

纳米级分辨率成像对于生物学、化学、材料科学和纳米技术等许多科学领域而言不可或缺。扫描电子显微镜(SEM)作为对各种样品进行纳米级分析的重要工具被广泛使用。然而,由于扫描电子显微镜内部是真空环境,典型的分析需要对样品进行固定、干燥处理以及用重金属染色。因此,需要便捷且微创的方法来观察溶液中的样品。最近,我们开发了一种新型阻抗显微镜,即多频阻抗扫描电子显微镜(IP-SEM),它能够以最小的辐射损伤对水中的各种样本进行纳米级成像。在此,我们报告一种配备线性阵列终端的新型IP-SEM系统,通过向每个电极施加八个频率的输入信号,该系统能够在一次捕获中观察八张倾斜图像。此外,我们基于模拟退火(SA)算法开发了一种三维(3D)重建方法,使我们能够从这八张倾斜图像构建高精度的3D模型。本文报道的方法可轻松用于各种生物样品、有机材料和纳米颗粒的三维结构分析。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a423/11613192/1b7b460ac696/ga1.jpg

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