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Molecule-electrode interfaces in molecular electronic devices

机译:分子电子设备中的分子-电极界面

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Understanding charge transport of single molecules or a small collection of molecules sandwiched between electrodes is of fundamental importance for molecular electronics. This requires the fabrication of reliable devices, which depend on several factors including the testbed architectures used, the molecule number and defect density being tested, and the nature of the molecule-electrode interface. On the basis of significant progresses achieved in both experiments and theory over the past decade, in this tutorial review, we focus on new insights into the influence of the nature of the molecule-electrode interface, the most critical issue hindering the development of reliable devices, on the conducting properties of molecules. We summarize the strategies developed for controlling the interfacial properties and how the coupling strength between the molecules and the electrodes modulates the device properties. These analyses should be valuable for deeply understanding the relationship between the contact interface and the charge transport mechanism, which is of crucial importance for the development of molecular electronics, organic electronics, nanoelectronics, and other interface-related optoelectronic devices.
机译:理解单个分子或夹在电极之间的一小部分分子的电荷传输对分子电子学至关重要。这需要制造可靠的设备,这取决于几个因素,包括所使用的测试平台架构,要测试的分子数量和缺陷密度以及分子-电极界面的性质。在过去十年中在实验和理论上取得的重大进展的基础上,在本教程回顾中,我们将重点关注分子电极界面性质的影响的新见解,这是阻碍可靠设备发展的最关键问题,关于分子的导电特性。我们总结了为控制界面性质以及分子与电极之间的偶联强度如何调节器件性质而开发的策略。这些分析对于深入了解接触界面和电荷传输机制之间的关系应该是有价值的,这对于分子电子,有机电子,纳米电子以及其他与界面相关的光电设备的发展至关重要。

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