Polarization Charge around Impurities in Two-Dimensional Anisotropic Dirac Systems
Mohamed M. Elsayed, Sang Wook Kim, Juan M. Vanegas, Valeri N. Kotov

TL;DR
This paper investigates how uniaxial strain in anisotropic Dirac systems like graphene influences impurity-induced polarization charges, revealing strain-dependent charge distributions and the dominance of d-wave symmetry.
Contribution
It provides a detailed analysis of strain effects on impurity-induced polarization charges in anisotropic Dirac materials, including both Coulomb and short-range impurities, using perturbation theory and lattice simulations.
Findings
Strain causes a power-law tail in charge distribution modulated by angular harmonics.
D-wave symmetry dominates over a wide strain range.
Dirac cone tilt significantly affects charge distribution.
Abstract
Introducing quasiparticle anisotropy in graphene via uniaxial strain has a profound effect on the polarization charge density induced by external impurities, both Coulomb and short-range. In particular, the charge distribution induced by a Coulomb impurity exhibits a power law tail modulated by a strain-dependent admixture of angular harmonics. The appearance of distributed charge is in sharp contrast to the response in pristine/isotropic graphene, where for subcritical impurities the polarization charge is fully localized at the impurity position. It is also interesting to note that our results are obtained strictly at zero chemical potential, and the behavior is distinct from the familiar Friedel oscillations observed at finite chemical potential. We find that over a wide range of strain, the -wave symmetry is dominant. The presence of Dirac cone tilt, relevant to some 2D materials…
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Taxonomy
TopicsGraphene research and applications · Topological Materials and Phenomena · Quantum and electron transport phenomena
