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Absorptive pinhole collimators for ballistic Dirac fermions in graphene

机译:石墨烯中弹道狄拉克费米子的吸收性针孔准直器

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摘要

Ballistic electrons in solids can have mean free paths far larger than the smallest features patterned by lithography. This has allowed development and study of solid-state electron-optical devices such as beam splitters and quantum point contacts, which have informed our understanding of electron flow and interactions. Recently, high-mobility graphene has emerged as an ideal two-dimensional semimetal that hosts unique chiral electron-optical effects due to its honeycomb crystalline lattice. However, this chiral transport prevents the simple use of electrostatic gates to define electron-optical devices in graphene. Here we present a method of creating highly collimated electron beams in graphene based on collinear pairs of slits, with absorptive sidewalls between the slits. By this method, we achieve beams with angular width 18° or narrower, and transmission matching classical ballistic predictions.
机译:固体中的弹道电子可以具有的平均自由程远大于光刻所构图的最小特征。这使固态电子光学器件的发展和研究成为可能,例如分束器和量子点接触,这些使我们对电子流动和相互作用有了了解。最近,由于其蜂窝状晶格,高迁移率石墨烯已成为一种理想的二维半金属,具有独特的手性电子光学效应。然而,这种手性传输阻止了简单地使用静电门来限定石墨烯中的电子光学器件。在这里,我们提出了一种基于共线缝隙在缝隙之间具有吸收性侧壁的,在石墨烯中创建高度准直电子束的方法。通过这种方法,我们可以获得角宽为18°或更窄的光束,并且透射率与经典弹道预测相匹配。

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