English

Drude Conductivity of Dirac Fermions in Graphene

Mesoscale and Nanoscale Physics 2015-05-19 v1

Abstract

Electrons moving in graphene behave as massless Dirac fermions, and they exhibit fascinating low-frequency electrical transport phenomena. Their dynamic response, however, is little known at frequencies above one terahertz (THz). Such knowledge is important not only for a deeper understanding of the Dirac electron quantum transport, but also for graphene applications in ultrahigh speed THz electronics and IR optoelectronics. In this paper, we report the first measurement of high-frequency conductivity of graphene from THz to mid-IR at different carrier concentrations. The conductivity exhibits Drude-like frequency dependence and increases dramatically at THz frequencies, but its absolute strength is substantially lower than theoretical predictions. This anomalous reduction of free electron oscillator strength is corroborated by corresponding changes in graphene interband transitions, as required by the sum rule. Our surprising observation indicates that many-body effects and Dirac fermion-impurity interactions beyond current transport theories are important for Dirac fermion electrical response in graphene.

Keywords

Cite

@article{arxiv.1007.4623,
  title  = {Drude Conductivity of Dirac Fermions in Graphene},
  author = {Jason Horng and Chi-Fan Chen and Baisong Geng and Caglar Girit and Yuanbo Zhang and Zhao Hao and Hans A. Bechtel and Michael Martin and Alex Zettl and Michael F. Crommie and Y. Ron Shen and Feng Wang},
  journal= {arXiv preprint arXiv:1007.4623},
  year   = {2015}
}