Giant quantum oscillations of acoustoelectric current in narrow graphene nanoribbons

Vl A Margulis, E E Muryumin
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Abstract

Abstract A theory is presented for the acoustoelectric (AE) effect in narrow graphene nanoribbons (GNRs) deposited on a piezoelectric substrate when a surface acoustic wave (SAW) is launched onto the surface of the piezoelectric. It is assumed that the electron density in such GNRs can be controlled by applying an external gate voltage, and the acoustic wavelength is much smaller than the mean free path of electrons, so that the quantum mode of interaction of those electrons with the SAW in realized. Using the kinetic theoryapproach, we calculate the AE current flowing through the GNR sample and arising as a result of momentum transfer from coherent SAW phonons to conduction electrons. It is shown that size quantization of the electron energy spectrum in narrow GNRs leads to giant periodic oscillations of the AE current with a change in the gate voltage. AE current surges occur whenever the Fermi level, rising with increasing gate voltage, crosses in turn the bottom of each of the successive size-quantized electron energy subbands. The oscillations predicted are giant in the sense that the maximum values of the current exceed its minimum values by at least an order of magnitude, and they can be observed in narrow GNRs ∼ 10 nm wide even at room temperature.
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窄石墨烯纳米带中声电电流的巨大量子振荡
摘要提出了当表面声波(SAW)发射到压电基板上时,沉积在压电基板上的窄石墨烯纳米带(GNRs)的声电效应的理论。假设这种gnr中的电子密度可以通过施加外部栅极电压来控制,并且声波波长远小于电子的平均自由程,从而实现了这些电子与SAW相互作用的量子模式。利用动力学方法,我们计算了通过GNR样品的声发射电流,这是由于相干声SAW声子向传导电子的动量转移而产生的。结果表明,窄极gnr中电子能谱的尺寸量化导致声发射电流随栅极电压的变化产生巨大的周期振荡。随着栅极电压的增加,当费米能级依次穿过每个连续尺寸量子化电子能量子带的底部时,声发射电流就会发生浪涌。预测的振荡是巨大的,因为电流的最大值超过其最小值至少一个数量级,并且即使在室温下,它们也可以在窄的gnr中观察到~ 10nm宽。
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