Chiral tunneling through generic one-dimensional potential barriers in bilayer graphene
arXiv:1507.07638 · doi:10.1103/PhysRevB.92.165407
Abstract
We study tunneling of charge carriers in single- and bilayer graphene. We propose an explanation for non-zero "magic angles" with 100% transmission for the case of symmetric potential barrier, as well as for their almost-survival for slightly asymmetric barrier in the bilayer graphene known previously from numerical simulations. Most importantly, we demonstrate that these magic angles are not protected in the case of bilayer and give an explicit example of a barrier with very small electron transmission probability for any angles. This means that one can lock charge carriers by a p-n-p (or n-p-n) junction without opening energy gap. This creates new opportunities for the construction of graphene transistors.
13 pages, 10 figures
References in corpus (7)
- The electronic properties of graphene
- Chiral tunneling and the Klein paradox in graphene
- Unconventional quantum Hall effect and Berry's phase of 2pi in bilayer graphene
- Quantum interference and Klein tunneling in graphene heterojunctions
- Evidence of Klein tunneling in graphene p-n junctions
- Klein Backscattering and Fabry-Perot Interference in Graphene Heterojunctions
- Semiclassical theory of potential scattering for massless Dirac fermions
Cited by in corpus (10)
- Electronic properties of graphene-based bilayer systems
- Tuning anti-Klein to Klein tunneling in bilayer graphene
- Klein tunneling in Weyl semimetals under the influence of magnetic field
- From Klein to anti-Klein tunneling in graphene tuning the Rashba spin-orbit interaction or the bilayer coupling
- Evidence of electronic cloaking from chiral electron transport in bilayer graphene nanostructures
- Chiral properties of graphene h-BN hybrid systems
- Weyl fermions in cylindrical wires
- Quantum Charged Spinning Massless Particles in 2+1 dimensions
- Mode-selective cloaking and phase-matching cavity resonances in bilayer graphene transport
- Mode-Resolved Multiband Ballistic Transport and Conductance Thresholds in Bilayer Graphene Junctions