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石墨烯回音壁电子学:将回音壁模式转换为电子输运

Graphene Whisperitronics: Transducing Whispering Gallery Modes into Electronic Transport.

作者信息

Brun Boris, Nguyen Viet-Hung, Moreau Nicolas, Somanchi Sowmya, Watanabe Kenji, Taniguchi Takashi, Charlier Jean-Christophe, Stampfer Christoph, Hackens Benoit

机构信息

IMCN/NAPS & MODL, Université catholique de Louvain (UCLouvain), B-1348 Louvain-la-Neuve, Belgium.

JARA-FIT and 2nd Institute of Physics, RWTH Aachen University, 52062 Aachen, Germany.

出版信息

Nano Lett. 2022 Jan 12;22(1):128-134. doi: 10.1021/acs.nanolett.1c03451. Epub 2021 Dec 13.

Abstract

When confined in circular cavities, graphene relativistic charge carriers occupy whispering gallery modes (WGMs) in analogy to classical acoustic and optical fields. The rich geometrical patterns of the WGMs decorating the local density of states offer promising perspectives to devise new disruptive quantum devices. However, exploiting these highly sensitive resonances requires the transduction of the WGMs to the outside world through source and drain electrodes, a yet unreported configuration. Here, we create a circular p-n island in a graphene device using a polarized scanning gate microscope tip and probe the resulting WGM signatures in in-plane electronic transport through the p-n island. Combining tight-binding simulations and the exact solution of the Dirac equation, we assign the measured device conductance features to WGMs and demonstrate mode selectivity by displacing the p-n island with respect to a constriction. This work therefore constitutes a proof of concept for graphene whisperitronic devices.

摘要

当被限制在圆形腔中时,石墨烯相对论性电荷载流子类似于经典声学和光学场占据回音壁模式(WGMs)。装饰态密度的WGMs丰富的几何图案为设计新型颠覆性量子器件提供了广阔前景。然而,利用这些高灵敏度共振需要通过源极和漏极电极将WGMs传导到外部世界,这是一种尚未报道的配置。在这里,我们使用偏振扫描门显微镜尖端在石墨烯器件中创建一个圆形p-n岛,并通过p-n岛探测平面内电子传输中产生的WGM特征。结合紧束缚模拟和狄拉克方程的精确解,我们将测量到的器件电导特征归因于WGMs,并通过相对于一个收缩区移动p-n岛来展示模式选择性。因此,这项工作构成了石墨烯回音壁电子器件的概念验证。

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