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Time- resolved impurity- invisibility in graphene nanoribbons

机译:时间在石墨烯-解决杂质隐形nanoribbons

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摘要

We investigate time-resolved charge transport through graphene nanoribbons supplemented with adsorbed impurity atoms. Depending on the location of the impurities with respect to the hexagonal carbon lattice, the transport properties of the system may become invisible to the impurity due to the symmetry properties of the binding mechanism. This motivates a chemical sensing device since dopants affecting the underlying sublattice symmetry of the pristine graphene nanoribbon introduce scattering. Using the time-dependent Landauer-Buttiker formalism, we extend the stationary current-voltage picture to the transient regime, where we observe how the impurity invisibility takes place at sub-picosecond time scales further motivating ultrafast sensor technology. We further characterize time-dependent local charge and current profiles within the nanoribbons, and we identify rearrangements of the current pathways through the nanoribbons due to the impurities. We finally study the behavior of the transients with ac driving which provides another way of identifying the lattice-symmetry breaking caused by the impurities.
机译:我们研究时间分辨的电荷传输通过石墨烯带的制作都补充了吸附杂质原子。杂质对的位置六角形的碳晶格,运输系统的属性可能会变得看不见杂质的对称性绑定机制。自掺杂物影响传感装置底层子格原始的对称石墨烯nanoribbon引入散射。含Landauer-Buttiker形式主义,我们延长固定电流电压的情况短暂的政权,我们观察杂质隐形发生sub-picosecond时间尺度进一步激励超速传感器技术。描述当地时间和收费当前nanoribbons内的资料,和我们识别当前路径的重组通过nanoribbons由于杂质。最后研究瞬变的行为ac驱动提供的另一种方式识别lattice-symmetry破坏引起的的杂质。

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