English

Elastic properties and mechanical tension of graphene

Materials Science 2017-03-01 v1

Abstract

Room temperature simulations of graphene have been performed as a function of the mechanical tension of the layer. Finite-size effects are accurately reproduced by an acoustic dispersion law for the out-of-plane vibrations that, in the long-wave limit, behaves as ρω2=σk2+κk4\rho\omega^2=\sigma k^2+\kappa k^4. The fluctuation tension σ\sigma is finite (0.1\sim 0.1 N/m) even when the external mechanical tension vanishes. Transverse vibrations imply a duplicity in the definition of the elastic constants of the layer, as observables related to the real area of the surface may differ from those related to the in-plane projected area. This duplicity explains the variability of experimental data on the Young modulus of graphene based on electron spectroscopy, interferometric profilometery, and indentation experiments.

Keywords

Cite

@article{arxiv.1702.08753,
  title  = {Elastic properties and mechanical tension of graphene},
  author = {R. Ramirez and C. P. Herrero},
  journal= {arXiv preprint arXiv:1702.08753},
  year   = {2017}
}

Comments

6 pages, 4 figures