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Diamondoid-based molecular junctions: a computational study

机译:基于类金刚石的分子结:计算研究

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In this work, we deal with the computational investigation of diamondoid-based molecular conductance junctions and their electronic transport properties. A small diamondoid is placed between the two gold electrodes of the nanogap and is covalently bonded to the gold electrodes through two different molecules, a thiol group and a N-heterocyclic carbene molecule. We have shown that the thiol linker is more efficient as it introduces additional electron paths for transport at lower energies. The influence of doping the diamondoid on the properties of the molecular junctions has been investigated. We find that using a nitrogen atom to dope the diamondoids leads to a considerable increase of the zero bias conductance. For the N-doped system we show an asymmetric feature of the I-V curve of the junctions resulting in rectification within a very small range of bias voltages. The rectifying nature is the result of the characteristic shift in the bias-dependent highest occupied molecular orbital state. In all cases, the efficiency of the device is manifested and is discussed in view of novel nanotechnological applications.
机译:在这项工作中,我们处理基于类金刚石的分子电导连接及其电子传输特性的计算研究。小的类金刚石放置在纳米间隙的两个金电极之间,并通过两个不同的分子(巯基和N杂环卡宾分子)共价键合到金电极上。我们已经表明,巯基连接体效率更高,因为它引入了其他电子路径以较低的能量进行传输。已经研究了掺杂类金刚石对分子结的性质的影响。我们发现使用氮原子掺杂类金刚石会导致零偏压电导的显着增加。对于N掺杂系统,我们显示了结的I-V曲线的不对称特征,导致在很小的偏置电压范围内进行整流。整流性质是在依赖于偏置的最高占据分子轨道状态下特性变化的结果。在所有情况下,器件的效率都得到了体现,并结合新型纳米技术的应用进行了讨论。

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