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Stability and Band Gap Constancy of Boron Nitride Nanotubes

Europhysics Letters (EPL) · 1994 · Vol. 28(5) · pp. 335–340
Xavier BlaseÁngel RubioSteven G. LouieMarvin L. Cohen

Abstract

Extensive LDA and quasi-particle calculations have been performed on boron nitride (BN) single-wall and multi-wall nanotubes. Strain energies are found to be smaller for BN nanotubes than for carbon nanotubes of the same radius, owing to a buckling effect which stabilizes the BN tubular structure. For tubes larger than 9.5 Å in diameter, the lowest conduction band is predicted to be free-electron-like with electronic charge density localized inside the tube. For these tubes, this band is at constant energy above the top of the valence band. Consequently, contrarily to carbon nanotubes, single- and multi-wall BN nanotubes are constant-band-gap materials, independent of their radius and helicity. In addition, we expect them to exhibit remarkable properties under n-type doping.

Graphene research and applicationsBoron and Carbon Nanomaterials ResearchMXene and MAX Phase MaterialsMaterials scienceBoron nitrideCarbon nanotubeBand gapMechanical properties of carbon nanotubesBallistic conduction in single-walled carbon nanotubesCondensed matter physicsDopingOptical properties of carbon nanotubesRADIUS
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References
Electron correlation in semiconductors and insulators: Band gaps and quasiparticle energies
Physical review. B, Condensed matter · 1986 · 3,879 citations
Electronic structure of chiral graphene tubules
Applied Physics Letters · 1992 · 2,768 citations
Efficacious Form for Model Pseudopotentials
Physical Review Letters · 1982 · 5,635 citations
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