Anomalous Floquet tunneling in uniaxially strained graphene

Y. Betancur-Ocampo, P. Majari, D. Espitia, F. Leyvraz, T. Stegmann
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引用次数: 4

Abstract

The interplay of strain engineering and photon-assisted tunneling of electrons in graphene is considered for giving rise to atypical transport phenomena. The combination of uniaxial strain and a time-periodic potential barrier helps to control the particle transmission for a wide range of tunable parameters. With the use of the tight-biding approach, the elasticity theory, and the Floquet scattering, we found an angular shift of the maximum transmission in the sidebands for uniaxial strains breaking the mirror symmetry with respect to the normal incidence, which is called anomalous Floquet tunneling. We show that electron tunneling depends strongly on the barrier width, incident angle, uniaxial strain, and the tuning of the time-periodic potential parameters. An adequate modulation of the barrier width and oscillation amplitude serves to select the transmission in the sidebands. These findings can be useful for controlling the electron current through the photon-assisted tunneling being used in multiple nanotechnological applications.
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单轴应变石墨烯中的异常Floquet隧穿
石墨烯中应变工程和光子辅助电子隧穿的相互作用被认为是引起非典型输运现象的原因。单轴应变和时间周期势垒的结合有助于在大范围可调参数范围内控制粒子传输。利用紧合方法、弹性理论和Floquet散射,我们发现单轴应变在侧带的最大透射率相对于正常入射发生了角位移,打破了镜面对称,这被称为反常Floquet隧道效应。我们发现电子隧穿与势垒宽度、入射角、单轴应变和时间周期势参数的调谐密切相关。对势垒宽度和振荡幅度的适当调制有助于选择侧带中的传输。这些发现对于通过光子辅助隧穿来控制电子电流在多种纳米技术应用中是有用的。
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