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Tight-binding approach to uniaxial strain in graphene

Physical Review B · 2009 · Vol. 80(4)
Vitor M. PereiraA. H. Castro NetoN. M. R. Peres

Abstract

We analyze the effect of tensional strain in the electronic structure of graphene. In the absence of electron-electron interactions, within linear elasticity theory, and a tight-binding approach, we observe that strain can generate a bulk spectral gap. However, this gap is critical, requiring threshold deformations in excess of 20% and only along preferred directions with respect to the underlying lattice. The gapless Dirac spectrum is robust for small and moderate deformations and the gap appears as a consequence of the merging of the two inequivalent Dirac points only under considerable deformations of the lattice. We discuss how strain-induced anisotropy and local deformations can be used as a means to affect transport characteristics and pinch off current flow in graphene devices.

Graphene research and applicationsQuantum and electron transport phenomenaTopological Materials and PhenomenaGrapheneGapless playbackCondensed matter physicsTight bindingAnisotropyLattice (music)Spectral gapElectronBand gapPhysics
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Impurity Scattering in Carbon Nanotubes – Absence of Back Scattering –
Journal of the Physical Society of Japan · 1998 · 471 citations
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