Electron Transmission Across Normal Metal-Strained Graphene-Normal Metal Junctions
arXiv:2007.02280 · doi:10.1016/j.physb.2020.412484
Abstract
The transmission of the electron across the single normal metal-graphene (NG) and normal-metal-graphene-normal-metal (NGN) junctions has been investigated. For the single NG junction, the profile of the maximum transmission which has been plotted against the dimensionless interface hopping respectively bears similarity to that of the conductance of the system. The minor effect of the incidence energy on transmission can also be found in conductance of the single NG junction whose tunneling behavior poses a striking difference from that of the NGN junction. Concerning with NGN junction, the transmission and conductance show more abundant structures when subjected to different incidence energies, interface hopping, and strain strengths. The increase of strain strength always induces more resonance peaks at different angles in transmission and can therefore enhance the conductance. The increase of length of the middle graphene segment can accommodate more quasi-resonance states, leading to the more resonance peaks and richer structures in transmission. In both single NG and NGN junctions, the increase of the wavefunction period on metal side(s) can be observed due to the enhancement of strain strength, which can serve as the sensor for the detection of the strain strength in graphene.
References in corpus (17)
- Electric Field Effect in Atomically Thin Carbon Films
- The electronic properties of graphene
- Doping graphene with metal contacts
- A tight-binding approach to uniaxial strain in graphene
- Specular Andreev reflection in graphene
- Magnetic confinement of massless Dirac fermions in graphene
- Multiple magnetic barriers in graphene
- Observation of excited states in a graphene quantum dot
- Effective contact model for transport through weakly-doped graphene
- Transport through normal metal - graphene contacts
- Josephson effect in graphene SBS junctions
- Mapping of strained graphene into one-dimensional Hamiltonians: quasicrystals and modulated crystals
- Scattering of two-dimensional Dirac fermions on gate-defined oscillating quantum dots
- Electrostatics of metal-graphene interfaces: sharp p-n junctions for electron-optical applications
- Graphene Nanoribbons Under Axial Compressive and Point Tensile Stresses
- Third Harmonic THz Generation from Graphene in a Parallel-Plate Waveguide
- Non-perturbative corrections to the quasiparticle velocity in graphene