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分子电子器件非弹性电子隧穿光谱的第一性原理模拟

First-principles simulations of inelastic electron tunneling spectroscopy of molecular electronic devices.

作者信息

Jiang Jun, Kula Mathias, Lu Wei, Luo Yi

机构信息

Theoretical Chemistry, Royal Institute of Technology, AlbaNova, S-106 91 Stockholm, Sweden, and National Lab for Infrared Physics, Shanghai Institute of Technical Physics, Chinese Academy of Sciences, China.

出版信息

Nano Lett. 2005 Aug;5(8):1551-5. doi: 10.1021/nl050789h.

Abstract

Inelastic electron tunneling spectroscopy (IETS) is a powerful experimental tool for studying the molecular and metal contact geometries in molecular electronic devices. A first-principles computational method based on the hybrid density functional theory is developed to simulate the IETS of realistic molecular electronic devices. The calculated spectra of a real device with an octanedithiolate embedded between two gold contacts are in excellent agreement with recent experimental results. Strong temperature dependence of the experimental IETS spectra is also reproduced. It is shown that the IETS is extremely sensitive to the intramolecular conformation and the molecule-metal contact geometry changes. With the help of theoretical calculations, it has finally become possible to fully understand and assign the complicated experimental IETS and, more importantly, provide the structural information of the molecular electronic devices.

摘要

非弹性电子隧穿谱(IETS)是研究分子电子器件中分子与金属接触几何结构的一种强大实验工具。基于杂化密度泛函理论开发了一种第一性原理计算方法,用于模拟实际分子电子器件的IETS。对一个在两个金接触之间嵌入辛二硫醇盐的实际器件计算得到的光谱与最近的实验结果高度吻合。实验IETS光谱强烈的温度依赖性也得到了再现。结果表明,IETS对分子内构象和分子 - 金属接触几何结构的变化极其敏感。借助理论计算,最终得以全面理解并解析复杂的实验IETS,更重要的是,能够提供分子电子器件的结构信息。

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