Origin of universal optical conductivity and optical stacking sequence identification in multilayer graphene

POSTER

Abstract

Recently, experiments have demonstrated that the conductivity per layer in multilayer graphene has the universal value $\sigma_{uni}=(\pi/2) \, e^2/h$ in the optical frequency range. We show that the origin of the universal optical conductivity in normal $N$-layer graphene multilayers is an emergent chiral symmetry which guarantees that $\sigma(\omega)=N\sigma_{uni}$ in both low and high frequency limits. In the intermediate frequency regime, the optical conductivity shows qualitatively different trends depending on the stacking sequence; thus, the optical conductivity measurement can provide a convenient qualitative characterization of multilayer graphene stacks. \\[4pt] Ref) Hongki Min and A. H. MacDonald, Phys. Rev. Lett. {\bf 103}, 067402 (2009).

*This work has been supported by the Welch Foundation, by the SWAN NRI program, by the NSF under grant DMR-0606489, and by the NIST-CNST/UMD-NanoCenter Cooperative Agreement.

Authors

  • Hongki Min

    • Center for Nanoscale Science and Technology, National Institute of Standards and Technology, Gaithersburg, MD 20899-6202
    • CNST, NIST, Gaithersburg, MD 20899 and NanoCenter, UMD, College Park, MD 20742
  • Allan H. MacDonald

    • Department of Physics, University of Texas at Austin
    • The University of Texas at Austin, Austin, TX
    • Department of Physics, University of Texas at Austin, Austin TX 78712