Geometric interference in a high-mobility graphene annulus p-n junction device
arXiv:2112.14614 · doi:10.1103/PhysRevB.105.045407
Abstract
The emergence of interference is observed in the resistance of a graphene annulus pn junction device as a result of applying two separate gate voltages. The observed resistance patterns are carefully inspected, and it is determined that the position of the peaks resulting from those patterns are independent of temperature and magnetic field. Furthermore, these patterns are not attributable to Aharonov-Bohm oscillations, Fabry Perot interference at the junction, or moiré potentials. The device data are compared with those of another device fabricated with a traditional Hall bar geometry, as well as with quantum transport simulation data. Since the two devices are of different topological classes, the subtle differences observed in the corresponding measured data indicate that the most likely source of the observed geometric interference patterns is quantum scarring.
References in corpus (15)
- The electronic properties of graphene
- 2D materials and van der Waals heterostructures
- Boron nitride substrates for high-quality graphene electronics
- Graphene photodetectors for high-speed optical communications
- STM Spectroscopy of ultra-flat graphene on hexagonal boron nitride
- Quantum interference and Klein tunneling in graphene heterojunctions
- Emergence of Superlattice Dirac Points in Graphene on Hexagonal Boron Nitride
- Anisotropic behaviors of massless Dirac fermions in graphene under periodic potential
- Transport measurements across a tunable potential barrier in graphene
- Electronic transport and quantum Hall effect in bipolar graphene p-n-p junction
- Quantized Transport in Graphene p-n Junctions in Magnetic Field
- An On/Off Berry Phase Switch in Circular Graphene Resonators
- Anomalously strong pinning of the filling factor nu=2 in epitaxial graphene
- Theory of Landau level mixing in heavily graded graphene p-n junctions
- Imaging Quantum Interference in Stadium-Shaped Monolayer and Bilayer Graphene Quantum Dots