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通过切换方向性探测由针尖诱导的分子吸附势手性反转

Tip-Induced Inversion of the Chirality of a Molecule's Adsorption Potential Probed by the Switching Directionality.

作者信息

Bauer Anja, Maier Markus, Schosser Werner M, Diegel Josefine, Paschke Fabian, Dedkov Yuriy, Pauly Fabian, Winter Rainer F, Fonin Mikhail

机构信息

Fachbereich Physik, Universität Konstanz, 78457, Konstanz, Germany.

Fachbereich Chemie, Universität Konstanz, 78457, Konstanz, Germany.

出版信息

Adv Mater. 2020 Mar;32(12):e1907390. doi: 10.1002/adma.201907390. Epub 2020 Feb 17.

Abstract

The switching behavior of surface-supported molecular units excited by current, light, or mechanical forces is determined by the shape of the adsorption potential. The ability to tailor the energy landscape in which a molecule resides at a surface gives the possibility of imposing a desired response, which is of paramount importance for the realization of molecular electronic units. Here, by means of scanning tunneling microscopy, a triazatruxene (TAT) molecule on Ag(111) is studied, which shows a switching behavior characterized by transitions of the molecule between three states, and which is attributed to three energetically degenerate bonding configurations. Upon tunneling current injection, the system can be excited and continuously driven, showing a switching directionality close to 100%. Two surface enantiomers of TAT show opposite switching directions pointing at the chirality of the energy landscape of the adsorption potential as a key ingredient for directional switching. Further, it is shown that by tuning the tunneling parameters, the symmetry of the adsorption potential can be controllably adjusted, leading to a suppression of the directionality or an inversion of the switching direction. The findings represent a molecule-surface model system exhibiting unprecedented control of the shape of its adsorption potential.

摘要

由电流、光或机械力激发的表面支撑分子单元的开关行为由吸附势的形状决定。调整分子在表面所处的能量态势的能力为施加所需响应提供了可能性,这对于实现分子电子单元至关重要。在此,借助扫描隧道显微镜研究了Ag(111)表面上的三氮杂蒄(TAT)分子,该分子表现出以分子在三种状态之间的转变为特征的开关行为,这归因于三种能量简并的键合构型。在注入隧穿电流时,该系统能够被激发并持续驱动,显示出接近100%的开关方向性。TAT的两种表面对映体显示出相反的开关方向,表明吸附势的能量态势的手性是定向开关的关键因素。此外,研究表明通过调整隧穿参数,可以可控地调节吸附势的对称性,从而导致方向性的抑制或开关方向的反转。这些发现代表了一个分子 - 表面模型系统,其对吸附势形状展现出前所未有的控制。

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