English

Towards pristine graphene-metal interface and microstructures: Laser assisted direct patterning on Epitaxial graphene

Mesoscale and Nanoscale Physics 2014-11-20 v1

Abstract

Graphene-metal contact resistance is governed by both intrinsic and extrinsic factors. Intrinsically, both the density of states bottleneck near the Dirac point and carrier reflection at the graphene-metal interface lead to a high contact resistance. Moreover, graphene exhibits insulating behavior for out-of-the-plane conduction. Extrinsically, surface contamination introduced by photoresist residue or different adsorbed species during standard lithography processing alters graphene's intrinsic properties by uncontrolled doping and increased scattering which results in high and inconsistent contact resistance. Here we demonstrate a femto-second laser assisted direct patterning of graphene microstructures that enables us to study both intrinsic and extrinsic effects on the graphene-metal interface. We show that a clean graphene-metal interface is not sufficient to obtain contact resistance approaching the intrinsic limit set by the quantum resistance. We also demonstrated that unlike CVD graphene, edge state conduction (or end-contact) is not spontaneously formed by metal deposition in case of graphene grown on SiC(0001). We conclude that for epitaxial graphene, intentional end-contact formation is necessary to obtain contact resistance near the quantum contact resistance limit.

Keywords

Cite

@article{arxiv.1411.5114,
  title  = {Towards pristine graphene-metal interface and microstructures: Laser assisted direct patterning on Epitaxial graphene},
  author = {A. Nath and M. Currie and V. D. Wheeler and M. J. Tadjer and A. D. Koehler and Z. R. Robinson and K. Sridhara and S. C. Hernandez and J. A. Wollmershauser and J. T Robinson and R. L. Myers-Ward and C. R. Eddy, and M. V. Rao and D. K. Gaskill},
  journal= {arXiv preprint arXiv:1411.5114},
  year   = {2014}
}

Comments

18 pages, 5 figures

R2 v1 2026-06-22T07:04:05.923Z