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Size quantization of Dirac fermions in graphene constrictions

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arxiv 1603.00844 v2 pith:WGODJHRA submitted 2016-03-02 cond-mat.mes-hall

Size quantization of Dirac fermions in graphene constrictions

classification cond-mat.mes-hall
keywords grapheneconductanceconstrictionsdiracquantumtransportballisticcarrier
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Quantum point contacts (QPCs) are cornerstones of mesoscopic physics and central building blocks for quantum electronics. Although the Fermi wave-length in high-quality bulk graphene can be tuned up to hundreds of nanometers, the observation of quantum confinement of Dirac electrons in nanostructured graphene systems has proven surprisingly challenging. Here we show ballistic transport and quantized conductance of size-confined Dirac fermions in lithographically-defined graphene constrictions. At high charge 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 ($v_F \approx 1.5 \times 10^6 m/s$) in our graphene 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.

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