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电子束诱导形成开孔金属氮杂富勒烯的时间分辨成像与分析

Time-resolved imaging and analysis of the electron beam-induced formation of an open-cage metallo-azafullerene.

作者信息

Hoelzel Helen, Lee Sol, Amsharov Konstantin Yu, Jux Norbert, Harano Koji, Nakamura Eiichi, Lungerich Dominik

机构信息

Department of Chemistry and Pharmacy, Friedrich-Alexander-University Erlangen-Nuernberg (FAU), Erlangen, Germany.

Department of Chemistry, The University of Tokyo, Bunkyo-ku, Tokyo, Japan.

出版信息

Nat Chem. 2023 Oct;15(10):1444-1451. doi: 10.1038/s41557-023-01261-7. Epub 2023 Jun 29.

Abstract

The visualization of single-molecule reactions provides crucial insights into chemical processes, and the ability to do so has grown with the advances in high-resolution transmission electron microscopy. There is currently a limited mechanistic understanding of chemical reactions under the electron beam. However, such reactions may enable synthetic methodologies that cannot be accessed by traditional organic chemistry methods. Here we demonstrate the synthetic use of the electron beam, by in-depth single-molecule, atomic-resolution, time-resolved transmission electron microscopy studies, in inducing the formation of a doubly holed fullerene-porphyrin cage structure from a well-defined benzoporphyrin precursor deposited on graphene. Through real-time imaging, we analyse the hybrid's ability to host up to two Pb atoms, and subsequently probe the dynamics of the Pb-Pb binding motif in this exotic metallo-organic cage structure. Through simulation, we conclude that the secondary electrons, which accumulate in the periphery of the irradiated area, can also initiate chemical reactions. Consequently, designing advanced carbon nanostructures by electron-beam lithography will depend on the understanding and limitations of molecular radiation chemistry.

摘要

单分子反应的可视化提供了对化学过程的关键见解,并且随着高分辨率透射电子显微镜技术的进步,实现这一目标的能力也在不断提高。目前,对于电子束下化学反应的机理理解有限。然而,此类反应可能会带来传统有机化学方法无法实现的合成方法。在此,我们通过深入的单分子、原子分辨率、时间分辨透射电子显微镜研究,展示了电子束在合成方面的应用,即从沉积在石墨烯上的明确苯并卟啉前体诱导形成双孔富勒烯 - 卟啉笼结构。通过实时成像,我们分析了该杂化物容纳多达两个铅原子的能力,并随后探究了这种奇特的金属有机笼结构中铅 - 铅结合基序的动力学。通过模拟,我们得出结论,在辐照区域周边积累的二次电子也能引发化学反应。因此,通过电子束光刻设计先进的碳纳米结构将取决于对分子辐射化学的理解和限制。

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