arXiv · 1601.00801
Friedel oscillation near a van Hove singularity in two-dimensional Dirac materials
Abstract
We consider Friedel oscillation in the two-dimensional Dirac materials when Fermi level is near the van Hove singularity. Twisted graphene bilayer and the surface state of topological crystalline insulator are the representative materials which show low-energy saddle points that are feasible to probe by gating. We approximate the Fermi surface near saddle point with a hyperbola and calculate the static Lindhard response function. Employing a theorem of Lighthill, the induced charge density $\delta n$ due to an impurity is obtained and the algebraic decay of $\delta n$ is determined by the singularity of the static response function. Although a hyperbolic Fermi surface is rather different from a circular one, the static Lindhard response function in the present case shows a singularity similar with the response function associated with circular Fermi surface, which leads to the $\delta n\propto R^{-2}$ at large distance $R$. The dependences of charge density on the Fermi energy are different. Consequently, it is possible to observe in twisted graphene bilayer the evolution that $\delta n\propto R^{-3}$ near Dirac point changes to $\delta n\propto R^{-2}$ above the saddle point. Measurements using scanning tunnelling microscopy around the impurity sites could verify the prediction.
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Chi-Ken Lu. 2016-01-05. Friedel oscillation near a van Hove singularity in two-dimensional Dirac materials. https://doi.org/10.1088/0953-8984/28/6/065001
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