Local density of states and scanning tunneling currents in graphene
N. M. R. Peres, Ling Yang, Shan-Wen Tsai

TL;DR
This paper provides exact analytical calculations of scanning tunneling currents and local density of states in disordered graphene, revealing sublattice phase differences and impurity-specific features relevant for STM experiments.
Contribution
It introduces a multimode analytical approach to compute LDOS and tunneling currents in graphene with various impurities, highlighting sublattice phase effects and momentum space features.
Findings
LDOS at A and B sublattices are out of phase by π
Friedel oscillations are not detectable without atomic resolution
Vacancies show 2q_F features in momentum maps
Abstract
We present exact analytical calculations of scanning tunneling currents in locally disordered graphene using a multimode description of the microscope tip. Analytical expressions for the local density of states (LDOS) are given for energies beyond the Dirac cone approximation. We show that the LDOS at the and sublattices of graphene are out of phase by implying that the averaged LDOS, as one moves away from the impurity, shows no trace of the (with the Fermi momentum) Friedel modulation. This means that a STM experiment lacking atomic resolution at the sublattice level will not be able of detecting the presence of the Friedel oscillations [this seems to be the case in the experiments reported in Phys. Rev. Lett. {\bf 101}, 206802 (2008)]. The momentum maps of the LDOS for different types of impurities are given. In the case of the vacancy, features are…
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