We consider graphene superlattice miniband fermions probed by electronic interferometry in magnetotransport experiments. By decoding the observed Fabry-Pérot interference patterns together with our corresponding quantum transport simulations, we find that the Dirac quasiparticles originating from the superlattice minibands do not undergo conventional cyclotron motion but follow more subtle trajectories. In particular, dynamics at low magnetic fields is characterized by peculiar, straight trajectory segments. Our results provide new insights into superlattice miniband fermions and open up novel possibilities to use periodic potentials in electron optics experiments
Cyclotron motion of charge carriers in metals and semiconductors leads to Landau quantization and ma...
Recent experimental studies on graphene on hexagonal boron nitride (hBN) have demonstrated that hBN ...
In this work, the impact of two-dimensional superlattices on the electronic band structure and elect...
We consider graphene superlattice miniband fermions probed by electronic interferometry in magneto-t...
Superlattices have attracted great interest because their use may make it possible to modify the spe...
The presence of periodic modulation in graphene leads to a reconstruction of the band structure and ...
A scalable tight-binding model is applied for large-scale quantum transport calculations in clean gr...
Abstract The presence of periodic modulation in graphene leads to a reconstruction of the band struc...
Electrostatic superlattices have been known to significantly modify the electronic structure of low-...
We report the experimental observation of commensurability oscillations (COs) in 1D graphene superla...
In quantizing magnetic fields, graphene superlattices exhibit a complex fractal spectrum often refer...
We review recent work on superlattices in monolayer and bilayer graphene. We high-light the role of ...
Cyclotron motion of charge carriers in metals and semiconductors leads to Landau quantization and ma...
Recent experimental studies on graphene on hexagonal boron nitride (hBN) have demonstrated that hBN ...
In this work, the impact of two-dimensional superlattices on the electronic band structure and elect...
We consider graphene superlattice miniband fermions probed by electronic interferometry in magneto-t...
Superlattices have attracted great interest because their use may make it possible to modify the spe...
The presence of periodic modulation in graphene leads to a reconstruction of the band structure and ...
A scalable tight-binding model is applied for large-scale quantum transport calculations in clean gr...
Abstract The presence of periodic modulation in graphene leads to a reconstruction of the band struc...
Electrostatic superlattices have been known to significantly modify the electronic structure of low-...
We report the experimental observation of commensurability oscillations (COs) in 1D graphene superla...
In quantizing magnetic fields, graphene superlattices exhibit a complex fractal spectrum often refer...
We review recent work on superlattices in monolayer and bilayer graphene. We high-light the role of ...
Cyclotron motion of charge carriers in metals and semiconductors leads to Landau quantization and ma...
Recent experimental studies on graphene on hexagonal boron nitride (hBN) have demonstrated that hBN ...
In this work, the impact of two-dimensional superlattices on the electronic band structure and elect...