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Molecular Signatures in the Transport Properties of Molecular Wire Junctions: What Makes a Junction 'Molecular'?

机译:分子线结的传输性质中的分子签名:是什么使结“分子化”的?

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The simplest component of molecular electronics consists of a single-molecule transport junction: a molecule sandwiched between source and drain electrodes, with or without a third gate electrode. In this Concept article, we focus on how molecules control transport in metal-electrode molecular junctions, and where the molecular signatures are to be found. In the situation where the molecule is relatively short and the gap between injection energy and molecular eigenstates is large, transport occurs largely by elastic tunneling, stochastic switching is common, and the vibronic signature can be found using inelastic electron tunneling spectroscopy (IETS). As the energy gaps for injection become smaller, one begins to see stronger molecular signatures - these include Franck-Condon-like structures in the current/voltage characteristic and strong vibronic interactions, which can lead to hopping behavior at the polaron limit. Conformational changes induced by the strong electric field lead to another strong manifestation of the molecular nature of the junction. We overview some of this mechanistic landscape, focusing on significant effects of switching (both stochastic and controlled by the electric field) and of molecular vibronic coupling.
机译:分子电子学中最简单的组件由单分子传输结组成:一个夹在源电极和漏电极之间的分子,带有或不带有第三​​栅极。在此“概念”文章中,我们重点讨论分子如何控制金属电极分子结中的传输,以及在何处发现分子标记。在分子相对较短且注入能量与分子本征态之间的间隙较大的情况下,传输主要通过弹性隧穿发生,随机切换是常见的,并且可以使用非弹性电子隧穿光谱学(IETS)来找到振动电子特征。随着注入的能隙变小,人们开始看到更强的分子特征-这些特征包括电流/电压特性中的类似Franck-Condon的结构以及强烈的电子振动相互作用,这可能导致在极化子极限处的跳跃行为。强电场引起的构象变化导致结分子性质的另一种强烈表现。我们概述了一些这种机械观点,重点关注开关(随机和受电场控制)和分子振动耦合的重大影响。

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