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超分辨率显微镜能否成为材料化学的标准表征技术?

Can super-resolution microscopy become a standard characterization technique for materials chemistry?

作者信息

Dhiman Shikha, Andrian Teodora, Gonzalez Beatriz Santiago, Tholen Marrit M E, Wang Yuyang, Albertazzi Lorenzo

机构信息

Laboratory of Macromolecular and Organic Chemistry, Eindhoven University of Technology P. O. Box 513 5600 MB Eindhoven The Netherlands.

Institute for Complex Molecular Systems, Eindhoven University of Technology P. O. Box 513 5600 MB Eindhoven The Netherlands.

出版信息

Chem Sci. 2021 Dec 1;13(8):2152-2166. doi: 10.1039/d1sc05506b. eCollection 2022 Feb 23.

Abstract

The characterization of newly synthesized materials is a cornerstone of all chemistry and nanotechnology laboratories. For this purpose, a wide array of analytical techniques have been standardized and are used routinely by laboratories across the globe. With these methods we can understand the structure, dynamics and function of novel molecular architectures and their relations with the desired performance, guiding the development of the next generation of materials. Moreover, one of the challenges in materials chemistry is the lack of reproducibility due to improper publishing of the sample preparation protocol. In this context, the recent adoption of the reporting standard MIRIBEL (Minimum Information Reporting in Bio-Nano Experimental Literature) for material characterization and details of experimental protocols aims to provide complete, reproducible and reliable sample preparation for the scientific community. Thus, MIRIBEL should be immediately adopted in publications by scientific journals to overcome this challenge. Besides current standard spectroscopy and microscopy techniques, there is a constant development of novel technologies that aim to help chemists unveil the structure of complex materials. Among them super-resolution microscopy (SRM), an optical technique that bypasses the diffraction limit of light, has facilitated the study of synthetic materials with multicolor ability and minimal invasiveness at nanometric resolution. Although still in its infancy, the potential of SRM to unveil the structure, dynamics and function of complex synthetic architectures has been highlighted in pioneering reports during the last few years. Currently, SRM is a sophisticated technique with many challenges in sample preparation, data analysis, environmental control and automation, and moreover the instrumentation is still expensive. Therefore, SRM is currently limited to expert users and is not implemented in characterization routines. This perspective discusses the potential of SRM to transition from a niche technique to a standard routine method for material characterization. We propose a roadmap for the necessary developments required for this purpose based on a collaborative effort from scientists and engineers across disciplines.

摘要

新合成材料的表征是所有化学和纳米技术实验室的基石。为此,一系列分析技术已实现标准化,并被全球各地的实验室常规使用。通过这些方法,我们能够了解新型分子结构的结构、动力学和功能,以及它们与预期性能的关系,从而指导下一代材料的开发。此外,材料化学面临的挑战之一是由于样品制备方案公布不当而导致缺乏可重复性。在此背景下,最近采用的用于材料表征和实验方案细节的报告标准MIRIBEL(生物纳米实验文献中的最小信息报告)旨在为科学界提供完整、可重复和可靠的样品制备方法。因此,科学期刊应立即在出版物中采用MIRIBEL来应对这一挑战。除了当前的标准光谱学和显微镜技术外,旨在帮助化学家揭示复杂材料结构的新技术也在不断发展。其中,超分辨率显微镜(SRM)作为一种绕过光衍射极限的光学技术,有助于在纳米分辨率下对具有多色能力且侵入性最小的合成材料进行研究。尽管SRM仍处于起步阶段,但在过去几年的开创性报告中已凸显出其揭示复杂合成结构的结构、动力学和功能的潜力。目前,SRM是一项复杂的技术,在样品制备、数据分析、环境控制和自动化方面存在诸多挑战,而且仪器设备仍然昂贵。因此,SRM目前仅限于专业用户,尚未应用于表征常规操作中。本文讨论了SRM从一种小众技术转变为材料表征标准常规方法的潜力。我们基于跨学科科学家和工程师的共同努力,提出了实现这一目标所需的必要发展路线图。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/18f1/8864713/858ace11acc4/d1sc05506b-f1.jpg

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