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The resonant tunneling through a graphene multiquantum well system

机译:通过石墨烯多量子阱系统的共振隧穿

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摘要

The transport properties of a graphene multiquantum well system are investigated numerically using transfer-matrix method. There are transmission gaps for electrons and holes in the transmission spectra at tilted incidence. In the transmission gaps, a few resonant tunneling peaks appear, defined as transmission windows, which are related with the bound states in the quantum wells. Unlike conventional semiconductor nanostructures, the location and the width of the transmission windows are sensitive not only to the quantum well width but also the incident angle. The number of the quantum wells determines the fine structure of the transmission windows. The anisotropic property is affected in the following way: the increase in well width makes the nonzero-transmission incident angle range decrease, and the interference effect is enhanced as the well number increases. Tiny oscillation of the conductance and fine structures in the middle energy range are due to the resonant tunneling induced by the multiquantum well structure. These oscillating features may be helpful in explaining the oscillatory characteristics in experiment.
机译:利用转移矩阵法对石墨烯多量子阱系统的输运性质进行了数值研究。倾斜入射时,透射光谱中的电子和空穴存在透射间隙。在透射间隙中,出现了一些共振隧穿峰,定义为透射窗,与量子阱中的束缚态有关。与常规半导体纳米结构不同,透射窗的位置和宽度不仅对量子阱宽度而且对入射角敏感。量子阱的数量决定了透射窗口的精细结构。各向异性特性受到以下影响:阱宽度的增加使非零透射入射角范围减小,并且随着阱数的增加,干涉效果增强。中能范围内的电导和精细结构的微小振荡是由于多量子阱结构引起的共振隧穿。这些振荡特征可能有助于解释实验中的振荡特性。

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