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Reversible on-surface wiring of resistive circuits

机译:电阻电路的可逆表面布线

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Whilst most studies in single-molecule electronics involve components first synthesized ex situ, there is also great potential in exploiting chemical transformations to prepare devices in situ. Here, as a first step towards this goal, we conduct reversible reactions on monolayers to make and break covalent bonds between alkanes of different lengths, then measure the conductance of these molecules connected between electrodes using the scanning tunneling microscopy-based break junction (STM-BJ) method. In doing so, we develop the critical methodology required for assembling and disassembling surface-bound single-molecule circuits. We identify effective reaction conditions for surface-bound reagents, and importantly demonstrate that the electronic characteristics of wires created in situ agree with those created ex situ. Finally, we show that the STM-BJ technique is unique in its ability to definitively probe surface reaction yields both on a local (~50 nm2) and pseudo-global (≥10 mm2) level. This investigation thus highlights a route to the construction and integration of more complex, and ultimately functional, surface-based single-molecule circuitry, as well as advancing a methodology that facilitates studies beyond the reach of traditional ex situ synthetic approaches.
机译:尽管大多数有关单分子电子学的研究都涉及先合成 situ 的组件,但利用化学转化来制备 situ 的装置也具有很大的潜力。在此,迈向此目标的第一步是,我们在单层上进行可逆反应,以使不同长度的烷烃之间形成共价键并使其断裂,然后使用基于扫描隧道显微镜的断裂键(STM- BJ)方法。为此,我们开发了组装和拆卸表面结合的单分子电路所需的关键方法。我们确定了表面结合试剂的有效反应条件,并重要地证明了原位产生的导线的电子特性与原位产生的导线的电子特性一致。最后,我们表明STM-BJ技术在确定局部(〜50 nm 2 )和伪全局(局部)表面反应产率方面具有独特的能力。 ≥10 mm因此,这项研究着重指出了构建和整合更复杂,最终功​​能性的,基于表面的单分子电路的途径,并提出了一种促进研究的方法,而这些方法使研究工作超出了传统的“非原位”研究范围。综合方法。

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