Electron-electron interactions and plasmon dispersion in graphene

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Abstract

Plasmons in two-dimensional electron systems with nonparabolic bands, such as graphene, feature strong dependence on electron-electron interactions. We use a many-body approach to relate plasmon dispersion at long wavelengths to Landau Fermi-liquid interactions and quasiparticle velocity. An identical renormalization is shown to arise for the magnetoplasmon resonance. For a model with N 1 fermion species, this approach predicts a power-law dependence for plasmon frequency vs carrier concentration, valid in a wide range of doping densities, both high and low. Gate tunability of plasmons in graphene can be exploited to directly probe the effects of electron-electron interaction. © 2013 American Physical Society.

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APA

Levitov, L. S., Shtyk, A. V., & Feigelman, M. V. (2013). Electron-electron interactions and plasmon dispersion in graphene. Physical Review B - Condensed Matter and Materials Physics, 88(23). https://doi.org/10.1103/PhysRevB.88.235403

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