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Time-dependent transport through a T-coupled quantum dot

机译:通过T耦合量子点依赖于时间的运输

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We are considering the time-dependent transport through a discrete system, consisting of a quantum dot T-coupled to an infinite tight-binding chain. The periodic driving that is induced on the coupling between the dot and the chain, leads to the emergence of a characteristic multiple Fano resonant profile in the transmission spectrum. We focus on investigating the underlying physical mechanisms that give rise to the quantum resonances. To this end, we use Floquet theory for calculating the transmission spectrum and in addition employ the Geometric phase propagator approach [G. Pavlou, A. Karanikas, F. Diakonos, Ann. Phys. 375, 351 (2016)] to calculate the transition amplitudes of the time-resolved virtual processes, in terms of which we describe the resonant behavior. This two fold approach, allows us to give a rigorous definition of a quantum resonance in the context of driven systems and explains the emergence of the characteristic Fano profile in the transmission spectrum.
机译:我们正在考虑通过离散系统的时间依赖的运输,由耦合到无限紧密结合链的量子点T型。 在点和链之间耦合诱导的周期性驱动导致透射光谱中特征多个FANO共振曲线的出现。 我们专注于调查产生量子共振的潜在物理机制。 为此,我们使用FLOQUET理论来计算传输光谱,并且还采用几何相位传播器方法[G. Pavlou,A. Karanikas,F. Diakonos,Ann。 物理。 375,351(2016)]为了计算时间解析虚拟过程的转换幅度,我们描述了谐振行为。 这种两倍的方法使我们能够在驱动系统的背景下给出对量子共振的严格定义,并解释了传输光谱中的特征扇形轮廓的出现。

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