arXiv Analytics

Sign in

arXiv:1011.0995 [cond-mat.mes-hall]AbstractReferencesReviewsResources

Compressibility of graphene

D. S. L. Abergel, E. H. Hwang, S. Das Sarma

Published 2010-11-03, updated 2011-03-08Version 2

We develop a theory for the compressibility and quantum capacitance of disordered monolayer and bilayer graphene including the full hyperbolic band structure and band gap in the latter case. We include the effects of disorder in our theory, which are of particular importance at the carrier densities near the Dirac point. We account for this disorder statistically using two different averaging procedures: first via averaging over the density of carriers directly, and then via averaging in the density of states to produce an effective density of carriers. We also compare the results of these two models with experimental data, and to do this we introduce a model for inter-layer screening which predicts the size of the band gap between the low-energy conduction and valence bands for arbitary gate potentials applied to both layers of bilayer graphene. We find that both models for disorder give qualitatively correct results for gapless systems, but when there is a band gap at charge neutrality, the density of states averaging is incorrect and disagrees with the experimental data.

Comments: 10 pages, 7 figures, RevTeX
Journal: Phys. Rev. B 83, 085429 (2011)
Categories: cond-mat.mes-hall
Subjects: 73.22.Pr, 71.23.-k
Related articles: Most relevant | Search more
arXiv:1311.6557 [cond-mat.mes-hall] (Published 2013-11-26)
Control over band structure and tunneling in Bilayer Graphene induced by velocity engineering
arXiv:1404.2247 [cond-mat.mes-hall] (Published 2014-04-08)
Unusual Scaling Laws of the Band Gap and Optical Absorption of Phosphorene Nanoribbons
arXiv:1607.03710 [cond-mat.mes-hall] (Published 2016-07-13)
Controlled formation of an isolated miniband in bilayer graphene on an almost commensurate $\sqrt{3} \times \sqrt{3}$ substrate