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钌配合物分子结中的湿度控制整流开关

Humidity-controlled rectification switching in ruthenium-complex molecular junctions.

作者信息

Atesci Huseyin, Kaliginedi Veerabhadrarao, Celis Gil Jose A, Ozawa Hiroaki, Thijssen Joseph M, Broekmann Peter, Haga Masa-Aki, van der Molen Sense Jan

机构信息

Huygens-Kamerlingh Onnes Laboratorium, Leiden University, Niels Bohrweg 2, 2333 CA, Leiden, The Netherlands.

Department of Chemistry and Biochemistry, University of Bern, Freiestrasse 3, CH-3012, Bern, Switzerland.

出版信息

Nat Nanotechnol. 2018 Feb;13(2):117-121. doi: 10.1038/s41565-017-0016-8. Epub 2017 Dec 4.

Abstract

Although molecular rectifiers were proposed over four decades ago , until recently reported rectification ratios (RR) were rather moderate (RR ~ 10). This ceiling was convincingly broken using a eutectic GaIn top contact to probe molecular monolayers of coupled ferrocene groups (RR ~ 10), as well as using scanning tunnelling microscopy-break junctions and mechanically controlled break junctions to probe single molecules (RR ~ 10-10). Here, we demonstrate a device based on a molecular monolayer in which the RR can be switched by more than three orders of magnitude (between RR ~ 10 and RR ≥ 10) in response to humidity. As the relative humidity is toggled between 5% and 60%, the current-voltage (I-V) characteristics of a monolayer of di-nuclear Ru-complex molecules reversibly change from symmetric to strongly asymmetric (diode-like). Key to this behaviour is the presence of two localized molecular orbitals in series, which are nearly degenerate in dry circumstances but become misaligned under high humidity conditions, due to the displacement of counter ions (PF). This asymmetric gating of the two relevant localized molecular orbital levels results in humidity-controlled diode-like behaviour.

摘要

尽管分子整流器在四十多年前就已被提出,但直到最近,所报道的整流比(RR)仍相当适中(RR ~ 10)。使用共晶镓铟顶部接触来探测耦合二茂铁基团的分子单层(RR ~ 10),以及使用扫描隧道显微镜断裂结和机械控制断裂结来探测单分子(RR ~ 10⁴ - 10⁵),令人信服地打破了这一上限。在此,我们展示了一种基于分子单层的器件,其中整流比可响应湿度在三个多数量级范围内切换(介于RR ~ 10和RR ≥ 10³之间)。当相对湿度在5%和60%之间切换时,双核钌配合物分子单层的电流 - 电压(I - V)特性从对称可逆地变为强烈不对称(类二极管)。这种行为的关键在于存在两个串联的局域分子轨道,它们在干燥环境中几乎简并,但在高湿度条件下由于抗衡离子(PF₆⁻)的位移而变得失准。这两个相关局域分子轨道能级的不对称门控导致了湿度控制的类二极管行为。

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