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通过表面诱导的芳香稳定作用构建荷电和金属化的分子单层膜。

Charged and metallic molecular monolayers through surface-induced aromatic stabilization.

机构信息

Institut für Physik, Humboldt-Universität zu Berlin, Brook-Taylor-Straße 6, D-12489 Berlin, Germany.

出版信息

Nat Chem. 2013 Mar;5(3):187-94. doi: 10.1038/nchem.1572. Epub 2013 Feb 17.

Abstract

Large π-conjugated molecules, when in contact with a metal surface, usually retain a finite electronic gap and, in this sense, stay semiconducting. In some cases, however, the metallic character of the underlying substrate is seen to extend onto the first molecular layer. Here, we develop a chemical rationale for this intriguing phenomenon. In many reported instances, we find that the conjugation length of the organic semiconductors increases significantly through the bonding of specific substituents to the metal surface and through the concomitant rehybridization of the entire backbone structure. The molecules at the interface are thus converted into different chemical species with a strongly reduced electronic gap. This mechanism of surface-induced aromatic stabilization helps molecules to overcome competing phenomena that tend to keep the metal Fermi level between their frontier orbitals. Our findings aid in the design of stable precursors for metallic molecular monolayers, and thus enable new routes for the chemical engineering of metal surfaces.

摘要

大π共轭分子与金属表面接触时通常保持有限的电子能隙,在这个意义上仍然是半导体。然而,在某些情况下,基底的金属性质被认为延伸到第一层分子。在这里,我们为这一有趣的现象提供了化学原理。在许多报道的情况下,我们发现通过将特定取代基键合到金属表面并通过整个骨架结构的协同重杂化,有机半导体的共轭长度显著增加。因此,界面处的分子转变成具有强烈减小的电子能隙的不同化学物质。这种表面诱导的芳香稳定化机制有助于分子克服倾向于使金属费米能级保持在其前线轨道之间的竞争现象。我们的发现有助于设计稳定的金属单层分子前体,从而为金属表面的化学工程开辟新途径。

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