Modeling Klein tunneling and caustics of electron waves in graphene
arXiv:1409.1277 · doi:10.1103/PhysRevB.91.045420
Abstract
We employ the tight-binding propagation method to study Klein tunneling and quantum interference in large graphene systems. With this efficient numerical scheme, we model the propagation of a wave packet through a potential barrier and determine the tunneling probability for different incidence angles. We consider both sharp and smooth potential barriers in n-p-n and n-n' junctions and find good agreement with analytical and semiclassical predictions. When we go outside the Dirac regime, we observe that sharp n-p junctions no longer show Klein tunneling because of intervalley scattering. However, this effect can be suppressed by considering a smooth potential. Klein tunneling holds for potentials changing on the scale much larger than the interatomic distance. When the energies of both the electrons and holes are above the Van Hove singularity, we observe total reflection for both sharp and smooth potential barriers. Furthermore, we consider caustic formation by a two-dimensional Gaussian potential. For sufficiently broad potentials we find a good agreement between the simulated wave density and the classical electron trajectories.
14 pages, 12 figures
References in corpus (16)
- The electronic properties of graphene
- Chiral tunneling and the Klein paradox in graphene
- Andreev reflection and Klein tunneling in graphene
- Quantum interference and Klein tunneling in graphene heterojunctions
- Veselago Lens for Electrons: Focusing and Caustics in Graphene p-n Junctions
- Colloquium: The transport properties of graphene: An introduction
- Selective transmission of Dirac electrons and ballistic magnetoresistance of \textit{n-p} junctions in graphene
- Evidence of Klein tunneling in graphene p-n junctions
- Resonant scattering by realistic impurities in graphene
- Klein Backscattering and Fabry-Perot Interference in Graphene Heterojunctions
- Modeling electronic structure and transport properties of graphene with resonant scattering centers
- Caustics due to Negative Refractive Index in Circular Graphene p-n Junctions
- Scattering of two-dimensional massless Dirac electrons by a circular potential barrier
- Semiclassical theory of potential scattering for massless Dirac fermions
- Enhanced Screening in Chemically Functionalized Graphene
- Klein Tunneling in the presence of random impurities
Cited by in corpus (7)
- Symmetry breaking and (pseudo)spin polarization in Veselago lenses for massless Dirac fermions
- Focusing RKKY interaction by graphene P-N junction
- General Green's function formalism for layered systems: Wave function approach
- Effects of discrete topology on quantum transport across a graphene junction: A quantum gravity analogue
- Perfect transmission at oblique incidence by trigonal warping in graphene P-N junctions
- A Time-Dependent Random State Approach for Large-scale Density Functional Calculations
- Quantum Charged Spinning Massless Particles in 2+1 dimensions