Université Grenoble Alpes, CNRS, Grenoble INP, Institut Néel , 38000 Grenoble , France.
National Institute for Materials Science , 1-1 Namiki , Tsukuba 306-0044 , Japan.
Nano Lett. 2019 Feb 13;19(2):635-642. doi: 10.1021/acs.nanolett.8b02584. Epub 2019 Jan 24.
We report on the evolution of the coherent electronic transport through a gate-defined constriction in a high-mobility graphene device from ballistic transport to quantum Hall regime upon increasing the magnetic field. At a low field, the conductance exhibits Fabry-Pérot resonances resulting from the npn cavities formed beneath the top-gated regions. Above a critical field B* corresponding to the cyclotron radius equal to the npn cavity length, Fabry-Pérot resonances vanish, and snake trajectories are guided through the constriction with a characteristic set of conductance oscillations. Increasing further the magnetic field allows us to probe the Landau level spectrum in the constriction and unveil distortions due to the combination of confinement and deconfinement of Landau levels in a saddle potential. These observations are confirmed by numerical calculations.
我们报告了在增加磁场的情况下,通过一个高迁移率石墨烯器件中门控限制的相干电子输运从弹道输运到量子霍尔态的演变。在低场下,电导表现出 Fabry-Pérot 共振,这是由于在顶部门控区域下方形成的 npn 腔所致。在对应于回旋半径等于 npn 腔长度的临界磁场 B*以上,Fabry-Pérot 共振消失,蛇形轨迹通过限制引导,具有特征的一组电导振荡。进一步增加磁场允许我们在限制中探测朗道能级谱,并揭示由于鞍形势中朗道能级的限制和解离的组合引起的扭曲。这些观察结果得到了数值计算的证实。