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Graphene transistor based on tunable Dirac fermion optics

机译:基于可调狄拉克费米子光学元件的石墨烯晶体管

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摘要

We present a quantum switch based on analogous Dirac fermion optics (DFO), in which the angle dependence of Klein tunneling is explicitly utilized to build tunable collimators and reflectors for the quantum wave function of Dirac fermions. We employ a dual-source design with a single flat reflector, which minimizes diffusive edge scattering and suppresses the background incoherent transmission. Our gate-tunable collimator–reflector device design enables the quantitative measurement of the net DFO contribution in the switching device operation. We obtain a full set of transmission coefficients between multiple leads of the device, separating the classical contribution from the coherent transport contribution. The DFO behavior demonstrated in this work requires no explicit energy gap. We demonstrate its robustness against thermal fluctuations up to 230 K and large bias current density up to 102 A/m, over a wide range of carrier densities. The characterizable and tunable optical components (collimator–reflector) coupled with the conjugated source electrodes developed in this work provide essential building blocks toward more advanced DFO circuits such as quantum interferometers. The capability of building optical circuit analogies at a microscopic scale with highly tunable electron wavelength paves a path toward highly integrated and electrically tunable electron-optical components and circuits.
机译:我们提出了一种基于类似狄拉克费米子光学器件(DFO)的量子开关,其中明确利用克莱因隧穿的角度依赖性来建立可调谐准直器和反射器,以实现狄拉克费米子的量子波功能。我们采用带有单个平面反射器的双光源设计,该设计可最大程度地减少扩散边缘散射并抑制背景不相干的透射。我们的门可调准直器-反射器设备设计能够定量测量开关设备操作中净DFO的贡献。我们获得了设备多根引线之间的全套传输系数,将经典贡献与相干传输贡献分开了。在这项工作中证明的DFO行为不需要明显的能隙。我们展示了它在各种载流子密度范围内对高达230 K的热波动和高达10 2 A / m的大偏置电流密度的鲁棒性。可表征的和可调谐的光学组件(准直器-反射器)与在这项工作中开发的共轭源电极相结合,为朝着更先进的DFO电路(例如量子干涉仪)提供了重要的组成部分。在微观尺度上利用高度可调的电子波长构建光学电路类比的能力为通向高度集成且电可调的电子光学组件和电路铺平了道路。

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