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Size quantization of Dirac fermions in graphene constrictions

机译:石墨烯缩颈中Dirac费米子的尺寸定量

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摘要

Quantum point contacts are cornerstones of mesoscopic physics and central building blocks for quantum electronics. Although the Fermi wavelength in high-quality bulk graphene can be tuned up to hundreds of nanometres, the observation of quantum confinement of Dirac electrons in nanostructured graphene has proven surprisingly challenging. Here we show ballistic transport and quantized conductance of size-confined Dirac fermions in lithographically defined graphene constrictions. At high carrier densities, the observed conductance agrees excellently with the Landauer theory of ballistic transport without any adjustable parameter. Experimental data and simulations for the evolution of the conductance with magnetic field unambiguously confirm the identification of size quantization in the constriction. Close to the charge neutrality point, bias voltage spectroscopy reveals a renormalized Fermi velocity of ~1.5 × 106?m?s?1 in our constrictions. Moreover, at low carrier density transport measurements allow probing the density of localized states at edges, thus offering a unique handle on edge physics in graphene devices.
机译:量子点接触是介观物理的基石,是量子电子学的核心组成部分。尽管可以将高质量本体石墨烯中的费米波长调节至数百纳米,但事实证明,观察纳米结构石墨烯中狄拉克电子的量子限制令人惊讶。在这里,我们显示了在光刻定义的石墨烯缩颈中尺寸受限的狄拉克费米子的弹道运输和量化电导。在高载流子密度下,观察到的电导率与Landauer弹道运输理论完全吻合,没有任何可调参数。电导随磁场的演变的实验数据和模拟清楚地证实了颈缩中大小量化的识别。在接近电荷中性点的地方,偏压光谱显示我们收缩区的费米速度重新标准化为〜1.5×10 6 ?m?s ?1 。此外,在低载流子密度下,传输测量允许探测边缘处的局部状态的密度,从而为石墨烯器件的边缘物理特性提供了独特的方法。

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