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在单分子二极管中的非弹性输运和低偏置整流。

Inelastic transport and low-bias rectification in a single-molecule diode.

机构信息

The Center for Bioelectronics and Biosensors, Biodesign Institute, Arizona State University School of Electrical, Energy and Computer Engineering, 1001 S. McAllister Avenue, Tempe, Arizona 85281-5801, United States.

出版信息

ACS Nano. 2011 Oct 25;5(10):8331-9. doi: 10.1021/nn2030644. Epub 2011 Sep 26.

Abstract

Designing, controlling, and understanding rectification behavior in molecular-scale devices has been a goal of the molecular electronics community for many years. Here we study the transport behavior of a single molecule diode, and its nonrectifying, symmetric counterpart at low temperatures, and at both low and high biases to help elucidate the electron-phonon interactions and transport mechanisms in the rectifying system. We find that the onset of current rectification occurs at low biases, indicating a significant change in the elastic transport pathway. However, the peaks in the inelastic electron tunneling (IET) spectrum are antisymmetric about zero bias and show no significant changes in energy or intensity in the forward or reverse bias directions, indicating that despite the change in the elastic transmission probability there is little impact on the inelastic pathway. These results agree with first principles calculations performed to evaluate the IETS, which also allow us to identify which modes are active in the single molecule junction.

摘要

多年来,设计、控制和理解分子尺度器件中的整流行为一直是分子电子学领域的目标。在这里,我们研究了单个分子二极管的输运行为,以及在低温下、在低偏压和高偏压下的非整流、对称对应物,以帮助阐明整流系统中的电子-声子相互作用和输运机制。我们发现,电流整流的开始发生在低偏压下,这表明弹性输运途径发生了显著变化。然而,非弹性电子隧穿(IET)谱中的峰值在零偏压下是对称的,并且在正向或反向偏压方向上,在能量或强度上没有明显变化,这表明尽管弹性传输概率发生了变化,但对非弹性途径的影响很小。这些结果与为评估 IETS 而进行的第一性原理计算一致,这也使我们能够确定在单分子结中哪些模式是活跃的。

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