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Molecular Electronics Special Feature: Tunneling rates in electron transport through double-barrier molecular junctions in a scanning tunneling microscope

机译:分子电子学的特色:在扫描隧道显微镜中电子通过双势垒分子结的传输速率

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摘要

The scanning tunneling microscope enables atomic-scale measurements of electron transport through individual molecules. Copper phthalocyanine and magnesium porphine molecules adsorbed on a thin oxide film grown on the NiAl(110) surface were probed. The single-molecule junctions contained two tunneling barriers, vacuum gap, and oxide film. Differential conductance spectroscopy shows that electron transport occurs via vibronic states of the molecules. The intensity of spectral peaks corresponding to the individual vibronic states depends on the relative electron tunneling rates through the two barriers of the junction, as found by varying the vacuum gap tunneling rate by changing the height of the scanning tunneling microscope tip above the molecule. A simple, sequential tunneling model explains the observed trends.
机译:扫描隧道显微镜可实现原子级测量电子通过单个分子的传输。探测了酞菁铜和镁卟啉分子吸附在NiAl(110)表面生长的氧化薄膜上的情况。单分子结包含两个隧穿势垒,真空间隙和氧化膜。差示电导光谱法表明,电子传输是通过分子的振动状态发生的。对应于各个振动状态的光谱峰的强度取决于通过结的两个势垒的相对电子隧穿速率,这是通过改变分子上方的扫描隧穿显微镜尖端的高度来改变真空间隙隧穿速率而发现的。一个简单的顺序隧道模型可以解释观察到的趋势。

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