Scattering of charge carriers in graphene induced by topological defects
arXiv:0908.2979 · doi:10.1016/j.physleta.2010.08.059
Abstract
We study the scattering of graphene quasiparticles by topological defects, represented by holes, pentagons and heptagons. For holes, we found that at low concentration they give a negligible contribution to the resistivity. Whenever pentagons or heptagons are introduced we realize that a fermionic current is scattered by defects.
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- The electron-phonon interaction from fundamental local gauge symmetries in solids
- Quantum Charged Spinning Massless Particles in 2+1 dimensions
- Klein tunneling through triple barrier in AB bilayer graphene