Electrostatically confined monolayer graphene quantum dots with orbital and valley splittings
arXiv:1608.02972 · doi:10.1021/acs.nanolett.6b02548
Abstract
The electrostatic confinement of massless charge carriers is hampered by Klein tunneling. Circumventing this problem in graphene mainly relies on carving out nanostructures or applying electric displacement fields to open a band gap in bilayer graphene. So far, these approaches suffer from edge disorder or insufficiently controlled localization of electrons. Here we realize an alternative strategy in monolayer graphene, by combining a homogeneous magnetic field and electrostatic confinement. Using the tip of a scanning tunneling microscope, we induce a confining potential in the Landau gaps of bulk graphene without the need for physical edges. Gating the localized states towards the Fermi energy leads to regular charging sequences with more than 40 Coulomb peaks exhibiting typical addition energies of 7-20 meV. Orbital splittings of 4-10 meV and a valley splitting of about 3 meV for the first orbital state can be deduced. These experimental observations are quantitatively reproduced by tight binding calculations, which include the interactions of the graphene with the aligned hexagonal boron nitride substrate. The demonstrated confinement approach appears suitable to create quantum dots with well-defined wave function properties beyond the reach of traditional techniques.
References in corpus (18)
- The electronic properties of graphene
- Valley filter and valley valve in graphene
- Micrometer-scale ballistic transport in encapsulated graphene at room temperature
- STM Spectroscopy of ultra-flat graphene on hexagonal boron nitride
- Spin qubits in graphene quantum dots
- Room temperature magnetic order on zigzag edges of narrow graphene nanoribbons
- Detecting Topological Currents in Graphene Superlattices
- Creating and Probing Electron Whispering Gallery Modes in Graphene
- Bound states and magnetic field-induced valley splitting in gate-tunable graphene quantum dots
- Nanolithography and manipulation of graphene using an atomic force microscope
- Analytic Model for the Energy Spectrum of a Graphene Quantum Dot in a Perpendicular Magnetic Field
- The Fock-Darwin States of Dirac Electrons in Graphene-based Artificial Atoms
- Gate defined zero- and one-dimensional confinement in bilayer graphene
- Magnetic field induced confinement-deconfinement transition in graphene quantum dots
- Transition to Landau Levels in Graphene Quantum Dots
- Graphene quantum dot on boron nitride: Dirac cone replica and Hofstadter butterfly
- Characterizing wave functions in graphene nanodevices: electronic transport through ultrashort graphene constrictions on a boron nitride substrate
- Spin decoherence in graphene quantum dots due to hyperfine interaction
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