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Substrate-induced band gap in graphene on hexagonal boron nitride:<i>Ab initio</i>density functional calculations

Physical Review B · 2007 · Vol. 76(7)
Gianluca GiovannettiPetr A. KhomyakovGeert BrocksPaul J. KellyJeroen van den Brink

Abstract

We determine the electronic structure of a graphene sheet on top of a lattice-matched hexagonal boron nitride $(h\text{\ensuremath{-}}\mathrm{B}\mathrm{N})$ substrate using ab initio density functional calculations. The most stable configuration has one carbon atom on top of a boron atom, and the other centered above a BN ring. The resulting inequivalence of the two carbon sites leads to the opening of a gap of $53\phantom{\rule{0.3em}{0ex}}\mathrm{meV}$ at the Dirac points of graphene and to finite masses for the Dirac fermions. Alternative orientations of the graphene sheet on the BN substrate generate similar band gaps and masses. The band gap induced by the BN surface can greatly improve room temperature pinch-off characteristics of graphene-based field effect transistors.

Graphene research and applications2D Materials and ApplicationsQuantum and electron transport phenomenaGrapheneMaterials scienceBand gapAb initioDensity functional theoryHexagonal boron nitrideSubstrate (aquarium)Electronic band structureBoron nitrideGraphene nanoribbons

Funding

  • Stichting voor Fundamenteel Onderzoek der Materie
  • Nederlandse Organisatie voor Wetenschappelijk Onderzoek
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1,501
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References
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Energy Gaps in Graphene Nanoribbons
Physical Review Letters · 2006 · 4,996 citations
The rise of graphene
Nature Materials · 2007 · 39,026 citations
Valley filter and valley valve in graphene
Nature Physics · 2007 · 1,666 citations
Electronic properties of disordered two-dimensional carbon
Physical Review B · 2006 · 1,425 citations
Chiral tunnelling and the Klein paradox in graphene
Nature Physics · 2006 · 3,830 citations
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