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Klein tunneling in graphene: Optics with massless electrons

机译:石墨烯中的克莱因隧道效应:无质量电子的光学

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This article provides a pedagogical review on Klein tunneling in graphene, i.e. the peculiar tunneling properties of two-dimensional massless Dirac electrons. We consider two simple situations in detail: a massless Dirac electron incident either on a potential step or on a potential barrier and use elementary quantum wave mechanics to obtain the transmission probability. We emphasize the connection to related phenomena in optics, such as the Snell-Descartes law of refraction, total internal reflection, Fabry-Pérot resonances, negative refraction index materials (the so called meta-materials), etc. We also stress that Klein tunneling is not a genuine quantum tunneling effect as it does not necessarily involve passing through a classically forbidden region via evanescent waves. A crucial role in Klein tunneling is played by the conservation of (sublattice) pseudo-spin, which is discussed in detail. A major consequence is the absence of backscattering at normal incidence, of which we give a new shorten proof. The current experimental status is also thoroughly reviewed. The Appendix contains the discussion of a one-dimensional toy model that clearly illustrates the difference in Klein tunneling between mono- and bi-layer graphene.
机译:本文对石墨烯中的Klein隧穿(即二维无质量Dirac电子的特殊隧穿特性)进行了教学研究。我们详细考虑了两种简单的情况:无质量的狄拉克电子入射到势步或势垒上,并使用基本量子波力学获得传输概率。我们强调与光学中相关现象的联系,例如Snell-Descartes折射定律,全内反射,Fabry-Pérot共振,负折射率材料(所谓的超材料)等。我们还强调了克莱因隧道效应这并不是真正的量子隧穿效应,因为它不一定涉及通过e逝波穿过经典的禁区。 (亚晶格)伪自旋的守恒在克莱因隧道效应中起着至关重要的作用,对此进行了详细讨论。一个主要的结果是在正常入射时没有反向散射,对此我们给出了新的缩短证明。目前的实验状态也得到了彻底的审查。附录包含对一维玩具模型的讨论,该模型清楚地说明了单层和双层石墨烯之间的Klein隧穿差异。

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