English

Controlling electron-phonon interactions in graphene at ultra high carrier densities

Mesoscale and Nanoscale Physics 2010-12-14 v1 Materials Science

Abstract

We report on the temperature dependent electron transport in graphene at different carrier densities nn. Employing an electrolytic gate, we demonstrate that nn can be adjusted up to 4×1014\times10^{14}cm2^{-2} for both electrons and holes. The measured sample resistivity ρ\rho increases linearly with temperature TT in the high temperature limit, indicating that a quasi-classical phonon distribution is responsible for the electron scattering. As TT decreases, the resistivity decreases more rapidly following ρ(T)T4\rho (T) \sim T^{4}. This low temperature behavior can be described by a Bloch-Gr\"{u}neisen model taking into account the quantum distribution of the 2-dimensional acoustic phonons in graphene. We map out the density dependence of the characteristic temperature ΘBG\Theta_{BG} defining the cross-over between the two distinct regimes, and show, that for all nn, ρ(T)\rho(T) scales as a universal function of the normalized temperature T/ΘBGT/\Theta_{BG}.

Keywords

Cite

@article{arxiv.1009.2988,
  title  = {Controlling electron-phonon interactions in graphene at ultra high carrier densities},
  author = {Dmitri K. Efetov and Philip Kim},
  journal= {arXiv preprint arXiv:1009.2988},
  year   = {2010}
}