Interband transitions in narrow-gap carbon nanotubes and graphene nanoribbons

We use the robust nearest-neighbor tight-binding approximation to study the same footing interband dipole transitions in narrow-bandgap carbon nanotubes (CNTs) and graphene nanoribbons (GNRs). It is demonstrated that curvature effects in metallic single-walled CNTs and edge effects in gapless GNRs n...

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Main Authors: Hartmann, R. R., Saroka, V. A., Portnoi, M. E.
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Published: Animo Repository 2019
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Online Access:https://animorepository.dlsu.edu.ph/faculty_research/3743
https://animorepository.dlsu.edu.ph/context/faculty_research/article/4745/type/native/viewcontent/1.5080009
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spelling oai:animorepository.dlsu.edu.ph:faculty_research-47452021-10-11T02:57:22Z Interband transitions in narrow-gap carbon nanotubes and graphene nanoribbons Hartmann, R. R. Saroka, V. A. Portnoi, M. E. We use the robust nearest-neighbor tight-binding approximation to study the same footing interband dipole transitions in narrow-bandgap carbon nanotubes (CNTs) and graphene nanoribbons (GNRs). It is demonstrated that curvature effects in metallic single-walled CNTs and edge effects in gapless GNRs not only open up bandgaps, which typically correspond to THz frequencies, but also result in a giant enhancement of the probability of optical transitions across these gaps. Moreover, the matrix element of the velocity operator for these transitions has a universal value (equal to the Fermi velocity in graphene) when the photon energy coincides with the bandgap energy. Upon increasing the excitation energy, the transition matrix element first rapidly decreases (for photon energies remaining in the THz range but exceeding two bandgap energies, it is reduced by three orders of magnitude), and thereafter it starts to increase proportionally to the photon frequency. A similar effect occurs in an armchair CNT with a bandgap opened and controlled by a magnetic field applied along the nanotube axis. There is a direct correspondence between armchair GNRs and single-walled zigzag CNTs. The described sharp photon-energy dependence of the transition matrix element, together with the van Hove singularity at the bandgap edge of the considered quasi-one-dimensional systems, makes them promising candidates for active elements of coherent THz radiation emitters. The effect of Pauli blocking of low-energy interband transitions caused by residual doping can be suppressed by creating a population inversion using high-frequency (optical) excitation. © 2019 Author(s). 2019-04-21T07:00:00Z text text/html https://animorepository.dlsu.edu.ph/faculty_research/3743 info:doi/10.1063/1.5080009 https://animorepository.dlsu.edu.ph/context/faculty_research/article/4745/type/native/viewcontent/1.5080009 Faculty Research Work Animo Repository Carbon nanotubes Energy gap (Physics) Graphene Photons Submillimeter waves Physics
institution De La Salle University
building De La Salle University Library
continent Asia
country Philippines
Philippines
content_provider De La Salle University Library
collection DLSU Institutional Repository
topic Carbon nanotubes
Energy gap (Physics)
Graphene
Photons
Submillimeter waves
Physics
spellingShingle Carbon nanotubes
Energy gap (Physics)
Graphene
Photons
Submillimeter waves
Physics
Hartmann, R. R.
Saroka, V. A.
Portnoi, M. E.
Interband transitions in narrow-gap carbon nanotubes and graphene nanoribbons
description We use the robust nearest-neighbor tight-binding approximation to study the same footing interband dipole transitions in narrow-bandgap carbon nanotubes (CNTs) and graphene nanoribbons (GNRs). It is demonstrated that curvature effects in metallic single-walled CNTs and edge effects in gapless GNRs not only open up bandgaps, which typically correspond to THz frequencies, but also result in a giant enhancement of the probability of optical transitions across these gaps. Moreover, the matrix element of the velocity operator for these transitions has a universal value (equal to the Fermi velocity in graphene) when the photon energy coincides with the bandgap energy. Upon increasing the excitation energy, the transition matrix element first rapidly decreases (for photon energies remaining in the THz range but exceeding two bandgap energies, it is reduced by three orders of magnitude), and thereafter it starts to increase proportionally to the photon frequency. A similar effect occurs in an armchair CNT with a bandgap opened and controlled by a magnetic field applied along the nanotube axis. There is a direct correspondence between armchair GNRs and single-walled zigzag CNTs. The described sharp photon-energy dependence of the transition matrix element, together with the van Hove singularity at the bandgap edge of the considered quasi-one-dimensional systems, makes them promising candidates for active elements of coherent THz radiation emitters. The effect of Pauli blocking of low-energy interband transitions caused by residual doping can be suppressed by creating a population inversion using high-frequency (optical) excitation. © 2019 Author(s).
format text
author Hartmann, R. R.
Saroka, V. A.
Portnoi, M. E.
author_facet Hartmann, R. R.
Saroka, V. A.
Portnoi, M. E.
author_sort Hartmann, R. R.
title Interband transitions in narrow-gap carbon nanotubes and graphene nanoribbons
title_short Interband transitions in narrow-gap carbon nanotubes and graphene nanoribbons
title_full Interband transitions in narrow-gap carbon nanotubes and graphene nanoribbons
title_fullStr Interband transitions in narrow-gap carbon nanotubes and graphene nanoribbons
title_full_unstemmed Interband transitions in narrow-gap carbon nanotubes and graphene nanoribbons
title_sort interband transitions in narrow-gap carbon nanotubes and graphene nanoribbons
publisher Animo Repository
publishDate 2019
url https://animorepository.dlsu.edu.ph/faculty_research/3743
https://animorepository.dlsu.edu.ph/context/faculty_research/article/4745/type/native/viewcontent/1.5080009
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