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Photon Assisted Current in Molecular Nanojunctions with Novel Types of Contacts

机译:具有新型触点的分子纳米结的光子辅助电流

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We propose new approaches to coherent control of transport via molecular junctions, which bypasses several of the hurdles to experimental realization of optically manipulated nanoelectronics noted in the previous literature. The first method is based on the application of intrinsic semiconductor contacts and optical frequencies below the semiconductor bandgap. Our analytical theory predicts a new phenomenon, referred to as coherent destruction of induced tunnelling, which extends the phenomenon of coherent destruction of tunnelling frequently discussed in the previous literature. We also propose to use graphene electrodes as a platform for effective photon assisted tunneling through molecular conduction nanojunctions. We predict dramatic increasing currents evaluated at side-band energies ~ n?ω (n is a whole number) related to the modification of graphene gapless spectrum under the action of external electromagnetic field of frequency ω. Our results illustrate the potential of semiconductor and graphene contacts in coherent control of photocurrent.
机译:我们提出了新的方法,通过分子交叉点绕过传输的交通控制,绕过几个障碍以对先前文献中的光学操纵纳米电子学的实验性实现。第一方法基于在半导体带隙下方的内在半导体触点和光学频率的应用。我们的分析理论预测了一种新的现象,称为诱导隧道的连贯性破坏,这延伸了前一种文学中经常讨论的隧道经常讨论的相干破坏现象。我们还建议使用石墨烯电极作为通过分子传导纳米结的有效光子辅助隧穿的平台。我们预测在侧频电磁场的外部电磁场的动作下,在侧频能量〜nω(n是整数)下评估的显着增加电流。我们的结果说明了在光电流的相干控制中的半导体和石墨烯接触的电位。

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