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Stable room-temperature molecular negative differential resistance based on molecule-electrode interface chemistry

机译:基于分子-电极界面化学的稳定室温分子负差分电阻

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摘要

We show reproducible, stable negative differential resistance (NDR) at room temperature in molecule-controlled, solvent-free devices, based on reversible changes in molecule-electrode interface properties. The active component is the cyclic disulfide end of a series of molecules adsorbed onto mercury. As this active component is reduced, the Hg-molecule contact is broken, and an insulating barrier at the molecule-electrode interface is formed. Therefore, the alignment of the molecular energy levels, relative to the Fermi levels of the electrodes, is changed. This effect results in a decrease in the current with voltage increase as the reduction process progresses, leading to the so-called NDR behavior. The effect is reproducible and repeatable over more than 50 scans without any reduction in the current. The stability of the system, which is in the "solid state" except for the Hg, is due to the molecular design where long alkyl chains keep the molecules aligned with respect to the Hg electrode, even when they are not bound to it any longer.
机译:基于分子-电极界面特性的可逆变化,我们在室温下在分子控制的无溶剂设备中显示了可再现的,稳定的负差分电阻(NDR)。活性成分是吸附在汞上的一系列分子的环状二硫键末端。随着该活性成分的减少,Hg-分子接触破裂,并且在分子-电极界面处形成绝缘阻挡层。因此,改变了相对于电极费米能级的分子能级的排列。随着减小过程的进行,这种效应导致电流随着电压的增加而减小,从而导致所谓的NDR行为。这种效果在50次以上的扫描中具有可重现性和可重复性,而电流没有任何降低。除Hg之外,系统处于“固态”状态的稳定性归因于分子设计,其中长的烷基链使分子相对于Hg电极保持对齐,即使它们不再与Hg电极结合也是如此。 。

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