arXiv Analytics

Sign in

arXiv:1504.01200 [cond-mat.mes-hall]AbstractReferencesReviewsResources

Temperature dependent screened electronic transport in gapped graphene

Digish K Patel, A C Sharma, S S Z Ashraf

Published 2015-04-06Version 1

We report our theoretical calculations on the temperature and energy dependent electrical conductivity of gapped graphene within the framework of Boltzmann transport formalism. Since screening effects have known to be of vital importance in explaining the conductivity of gapless graphene therefore we first worked out the behaviour of the temperature dependent polarization function for gapped graphene as a function of wave vector and band gap, respectively. Polarization of gapped graphene has been compared with that of gapless graphene, bilayer graphene and 2DEG to see the effects of gap. It is found that the gapped graphene polarization function exhibits a strong dependence on temperature, wave vector and band gap and the effect translates to the conductivity of gapped graphene. The nature of conductivity in gapped graphene is observed to be non monotonic ranging from good to poor to semi conducting. We also find that the conductivity computed as a function of temperature by averaging over quasi-particle energy significantly differs from that computed at Fermi energy, suggesting that a notable contribution to temperature dependent conductivity is made by electrons close to the Fermi level.

Related articles: Most relevant | Search more
arXiv:1610.08040 [cond-mat.mes-hall] (Published 2016-10-20)
Quantum electrodynamic approach to the conductivity of gapped graphene
arXiv:1903.09081 [cond-mat.mes-hall] (Published 2019-03-21)
Large enhancement of conductivity in Weyl semimetals with tilted cones: pseudo-relativity and linear response
arXiv:cond-mat/0203432 (Published 2002-03-21)
Mesoscopic fluctuations of the Density of States and Conductivity in the middle of the band of Disordered Lattices