Electrostatic confinement of charge carriers in graphene is governed by Klein tunnelling, a relativistic quantum process in which particle–hole transmutation leads to unusual anisotropic transmission at p–n junction boundaries. Reflection and transmission at these boundaries affect the quantum interference of electronic waves, enabling the formation of novel quasi-bound states. Here we report the use of scanning tunnelling microscopy to map the electronic structure of Dirac fermions confined in quantum dots defined by circular graphene p–n junctions. The quantum dots were fabricated using a technique involving local manipulation of defect charge within the insulating substrate beneath a graphene monolayer13. Inside such graphene quantum dot...
Graphene provides a rich platform for the study of interaction-induced broken symmetry states due to...
We use electrostatic lithography to fabricate a graphene p-n-p junction and exploit the coherence of...
Due to Klein tunneling in graphene only quasi-bound states are realized in graphene quantum dots by ...
Electrostatic confinement of charge carriers in graphene is governed by Klein tunnelling, a relativi...
Quantum confinement of Dirac fermions is an important frontier in graphene research. In this dissert...
Quantum confinement of Dirac fermions is an important frontier in graphene research. In this dissert...
Graphene p–n junctions provide an ideal platform for investigating novel behavior at the boundary be...
Relativistic fermions that are incident on a high potential barrier can pass through unimpeded, a st...
We observe spatial confinement of Dirac states on epitaxial graphene quantum dots with low-temperatu...
Graphene, a two-dimensional (2D) honeycomb lattice of sp2-bonded carbon atoms, is renowned for its m...
In graphene, charge carriers behave as massless (Dirac) fermions, yielding unprecedented electrical ...
Probing techniques with spatial resolution have the potential to lead to a better understand-ing of ...
With the advent of high mobility encapsulated graphene devices, new electronic components ruled by D...
© 2021, The Korean Physical Society.We analyze the effects of the strain-induced pseudo-magnetic fie...
Among the exotic properties of Dirac excitations in graphene, Klein tunneling appears to be a remark...
Graphene provides a rich platform for the study of interaction-induced broken symmetry states due to...
We use electrostatic lithography to fabricate a graphene p-n-p junction and exploit the coherence of...
Due to Klein tunneling in graphene only quasi-bound states are realized in graphene quantum dots by ...
Electrostatic confinement of charge carriers in graphene is governed by Klein tunnelling, a relativi...
Quantum confinement of Dirac fermions is an important frontier in graphene research. In this dissert...
Quantum confinement of Dirac fermions is an important frontier in graphene research. In this dissert...
Graphene p–n junctions provide an ideal platform for investigating novel behavior at the boundary be...
Relativistic fermions that are incident on a high potential barrier can pass through unimpeded, a st...
We observe spatial confinement of Dirac states on epitaxial graphene quantum dots with low-temperatu...
Graphene, a two-dimensional (2D) honeycomb lattice of sp2-bonded carbon atoms, is renowned for its m...
In graphene, charge carriers behave as massless (Dirac) fermions, yielding unprecedented electrical ...
Probing techniques with spatial resolution have the potential to lead to a better understand-ing of ...
With the advent of high mobility encapsulated graphene devices, new electronic components ruled by D...
© 2021, The Korean Physical Society.We analyze the effects of the strain-induced pseudo-magnetic fie...
Among the exotic properties of Dirac excitations in graphene, Klein tunneling appears to be a remark...
Graphene provides a rich platform for the study of interaction-induced broken symmetry states due to...
We use electrostatic lithography to fabricate a graphene p-n-p junction and exploit the coherence of...
Due to Klein tunneling in graphene only quasi-bound states are realized in graphene quantum dots by ...