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Mechanical conductance tunability of a porphyrin–cyclophane single-molecule junction

机译:机械电导的可调谐性porphyrin-cyclophane单分子结

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The possibility to study quantum interference phenomena at ambient conditions is an appealing feature of molecular electronics. By connecting two porphyrins in a cofacial cyclophane, we create an attractive platform for mechanically controlling electric transport through the intramolecular extent of π-orbital overlap of the porphyrins facing each other and through the angle of xanthene bridges with regard to the porphyrin planes. We analyze theoretically the evolution of molecular configurations in the pulling process and the corresponding changes in electric conduction by combining density functional theory (DFT) with Landauer scattering theory of phase-coherent elastic transport. Predicted conductances during the stretching process show order of magnitude variations caused by two robust destructive quantum interference features that span through the whole electronic gap between the highest occupied molecular orbital (HOMO) and the lowest unoccupied molecular orbital (LUMO). Mechanically-controlled break junction (MCBJ) experiments at room temperature verify the mechanosensitive response of the molecular junctions. During the continuous stretching of the molecule, they show conductance variations of up to 1.5 orders of magnitude over single breaking events. Uncommon triple- and quadruple-frequency responses are observed in periodic electrode modulation experiments with amplitudes of up to 10 Å. This further confirms the theoretically predicted double transmission dips caused by the spatial and energetic rearrangement of molecular orbitals, with contributions from both through-space and through-bond transport.
机译:研究量子干涉的可能性现象在环境条件是一个吸引人的分子的电子特性。两个卟啉cofacial cyclophane,我们创建一个有吸引力的机械平台控制电力传输通过分子内的π轨道的重叠并通过卟啉面对对方关于氧杂蒽角桥梁卟啉的飞机。进化的分子构型把过程和相应的变化导电相结合密度泛函理论(DFT)和蓝道散射相位相干理论弹性运输。预测在拉伸电导过程显示数量级变化引起的由两个健壮的破坏性的量子干涉跨整个电子的特性最高占据分子之间的差距轨道(人类)和最低未占据分子轨道(LUMO)。打破结(MCBJ)实验的房间温度验证mechanosensitive响应的分子连接。伸展的分子,他们显示电导1.5数量级的变化单一的突发事件。quadruple-frequency反应中观察到电极周期性调制实验振幅高达10。从理论上预测双传输下降造成的空间和精力充沛分子轨道的重排在空间和贡献通过债券运输。

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