English

Impact of graphene quantum capacitance on transport spectroscopy

Mesoscale and Nanoscale Physics 2012-10-30 v1 Disordered Systems and Neural Networks Materials Science Other Condensed Matter

Abstract

We demonstrate experimentally that graphene quantum capacitance CqC_{\mathrm{q}} can have a strong impact on transport spectroscopy through the interplay with nearby charge reservoirs. The effect is elucidated in a field-effect-gated epitaxial graphene device, in which interface states serve as charge reservoirs. The Fermi-level dependence of CqC_{\mathrm{q}} is manifested as an unusual parabolic gate voltage (VgV_{\mathrm{g}}) dependence of the carrier density, centered on the Dirac point. Consequently, in high magnetic fields BB, the spectroscopy of longitudinal resistance (RxxR_{xx}) vs. VgV_{\mathrm{g}} represents the structure of the unequally spaced relativistic graphene Landau levels (LLs). RxxR_{xx} mapping vs. VgV_{\mathrm{g}} and BB thus reveals the vital role of the zero-energy LL on the development of the anomalously wide ν=2\nu=2 quantum Hall state.

Keywords

Cite

@article{arxiv.1210.7601,
  title  = {Impact of graphene quantum capacitance on transport spectroscopy},
  author = {K. Takase and S. Tanabe and S. Sasaki and H. Hibino and K. Muraki},
  journal= {arXiv preprint arXiv:1210.7601},
  year   = {2012}
}

Comments

9 pages, 6 figures