articleTop 1% cited
Electronic States of Carbon Nanotubes
Journal of the Physical Society of Japan · 1993 · Vol. 62(4) · pp. 1255–1266
Hiroshi Ajiki✉(The University of Tokyo)Tsuneya Ando(The University of Tokyo)
Abstract
The π-electron states of carbon nanotubes (CN's) in magnetic fields are calculated in the effective-mass theory. A sensitive change of CN from metal to semiconductor depending on its structure is well reproduced. The band gap is inversely proportional to the tube diameter and exhibits a drastic change as a function of magnetic flux passing through the cylinder with period c h / e due to the Aharonov-Bohm effect. In a magnetic field perpendicular to the tube axis, the band-gap is reduced strongly and the energy spectra approach those of a graphite sheet.
Carbon Nanotubes in CompositesGraphene research and applicationsFullerene Chemistry and ApplicationsCarbon nanotubeMaterials scienceGraphiteCondensed matter physicsMagnetic fieldElectronSemiconductorBand gapPerpendicularElectronic band structure
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References
Motion of Electrons and Holes in Perturbed Periodic Fields
Physical Review · 1955 · 3,060 citations
Helical microtubules of graphitic carbon
Nature · 1991 · 42,584 citations
The Band Theory of Graphite
Physical Review · 1947 · 4,824 citations
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