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首页> 外文期刊>Science Advances >Stable anchoring chemistry for room temperature charge transport through graphite-molecule contacts
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Stable anchoring chemistry for room temperature charge transport through graphite-molecule contacts

机译:稳定的锚固化学作用,用于室温电荷通过石墨分子触点的传输

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摘要

An open challenge for single-molecule electronics is to find stable contacts at room temperature with a well-defined conductance. Common coinage metal electrodes pose fabrication and operational problems due to the high mobility of the surface atoms. We demonstrate how molecules covalently grafted onto mechanically robust graphite/graphene substrates overcome these limitations. To this aim, we explore the effect of the anchoring group chemistry on the charge transport properties of graphite-molecule contacts by means of the scanning tunneling microscopy break-junction technique and ab initio simulations. Molecules adsorbed on graphite only via van der Waals interactions have a conductance that decreases exponentially upon stretching the junctions, whereas the molecules bonded covalently to graphite have a single well-defined conductance and yield contacts of unprecedented stability at room temperature. Our results demonstrate a strong bias dependence of the single-molecule conductance, which varies over more than one order of magnitude even at low bias voltages, and show an opposite rectification behavior for covalent and noncovalent contacts. We demonstrate that this bias-dependent conductance and opposite rectification behavior is due to a novel effect caused by the nonconstant, highly dispersive density of states of graphite around the Fermi energy and that the direction of rectification is governed by the detailed nature of the molecule/graphite contact. Combined with the prospect of new functionalities due to a strongly bias-dependent conductance, these covalent contacts are ideal candidates for next-generation molecular electronic devices.
机译:单分子电子学的一个开放挑战是要在室温下以定义好的电导找到稳定的接触。普通的铸币金属电极由于表面原子的高迁移率而造成制造和操作上的问题。我们证明了共价接枝到机械坚固的石墨/石墨烯基材上的分子如何克服这些限制。为此,我们通过扫描隧道显微镜断裂连接技术和从头算的方法,探索了锚固基化学对石墨分子接触的电荷传输性质的影响。仅通过范德华相互作用而吸附在石墨上的分子的电导率在拉伸连接处时呈指数下降,而与石墨共价键合的分子具有单一的明确定义的电导率,并在室温下产生前所未有的稳定性。我们的结果证明了单分子电导的强烈偏置依赖性,即使在低偏置电压下,其变化也超过一个数量级,并且对于共价和非共价触点显示出相反的整流行为。我们证明了这种依赖于偏压的电导和相反的整流行为是由于费米能量周围的石墨状态的非恒定,高度分散密度引起的新效应,并且整流的方向由分子的详细性质/石墨接触。这些共价触点结合了由于强烈依赖于偏置的电导而带来的新功能的前景,是下一代分子电子设备的理想选择。

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