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单官能化分子中单键选择性化学的亚分子控制、光谱学和成像。

Submolecular control, spectroscopy and imaging of bond-selective chemistry in single functionalized molecules.

机构信息

Department of Physics and Astronomy, University of California, Irvine, California 92697-4575, USA.

出版信息

Nat Chem. 2013 Jan;5(1):36-41. doi: 10.1038/nchem.1488. Epub 2012 Nov 11.

Abstract

One of the key challenges in chemistry is to break and form bonds selectively in complex organic molecules that possess a range of different functional groups. To do this at the single-molecule level not only provides an opportunity to create custom nanoscale devices, but offers opportunities for the in-depth study of how the molecular electronic structure changes in individual reactions. Here we use a scanning tunnelling microscope (STM) to induce a sequence of targeted bond dissociation and formation steps in single thiol-based π-conjugated molecules adsorbed on a NiAl(110) surface. Furthermore, the electronic resonances of the resulting species were measured by spatially resolved electronic spectroscopy at each reaction step. Specifically, the STM was used to cleave individual acetyl groups and to form Au-S bonds by manipulating single Au atoms. A detailed understanding of the Au-S bond and its non-local influence is fundamentally important for determining the electron transport in thiol-based molecular junction.

摘要

化学领域的一个关键挑战是在具有多种不同官能团的复杂有机分子中选择性地断裂和形成键。在单分子水平上做到这一点不仅为创建定制的纳米级设备提供了机会,还为深入研究分子电子结构在单个反应中如何变化提供了机会。在这里,我们使用扫描隧道显微镜 (STM) 在吸附在 NiAl(110)表面的单个基于硫醇的π共轭分子上诱导一系列靶向键断和形成步骤。此外,通过在每个反应步骤中进行空间分辨电子光谱测量,测量了所得物种的电子共振。具体来说,STM 用于通过操纵单个 Au 原子来切割单个乙酰基并形成 Au-S 键。对于确定基于硫醇的分子结中的电子输运,深入了解 Au-S 键及其非局域影响至关重要。

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