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Single-electron transport driven by surface acoustic waves: Moving quantum dots versus short barriers

机译:由表面声波驱动的单电子传输:移动量子点与短障碍

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摘要

We have investigated the response of the acoustoelectric-current driven by a surface-acoustic wave through a quantum point contact in the closed-channel regime. Under proper conditions, the current develops plateaus at integer multiples of ef when the frequency f of the surface-acoustic wave or the gate voltage V-g of the point contact is varied. A pronounced 1.1 MHz beat period of the current indicates that the interference of the surface-acoustic wave with reflected waves matters. This is supported by the results obtained after a second independent beam of surface-acoustic wave was added, traveling in opposite direction. We have found that two sub-intervals can be distinguished within the 1.1 MHz modulation period, where two different sets of plateaus dominate the acoustoelectric-current versus gate-voltage characteristics. In some cases, both types of quantized steps appeared simultaneously, though at different current values, as if they were superposed on each other. Their presence could result from two independent quantization mechanisms for the acoustoelectric-current. We point out that short potential barriers determining the properties of our nominally long constrictions could lead to an additional quantization mechanism, independent from those described in the standard model of 'moving quantum dots.
机译:我们已经研究了通过闭路状态下的量子点接触,由表面声波驱动的声电电流的响应。在适当的条件下,当表面声波的频率f或点接触的栅极电压V-g发生变化时,电流会在ef的整数倍处发展平稳。电流的明显1.1 MHz拍频周期表明表面声波对反射波的干扰很重要。这由添加了第二个独立的表面声波束(沿相反方向传播)获得的结果支持。我们发现,在1.1 MHz调制周期内可以区分两个子间隔,其中两个不同的平稳段支配着声电电流与栅极电压的关系。在某些情况下,两种量化步长同时出现,尽管它们的当前值不同,就好像它们彼此叠加一样。它们的存在可能是由于声电电流的两个独立量化机制引起的。我们指出,确定我们名义上的长颈缩的特性的短潜在势垒可能会导致额外的量化机制,而与“移动量子点的标准模型”中所述的机制无关。

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