Graphene nanoribbon conductance model in parabolic band structure
Many experimental measurements have been done on GNR conductance. In this paper, analytical model of GNR conductance is presented. Moreover, comparison with published data which illustrates good agreement between them is studied. Conductance of GNR as a one-dimensional device channel with parabolic...
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Online Access: | http://eprints.utm.my/id/eprint/26158/1/MohammadTaghiAhmadi2010_GrapheneNanoribbonConductanceModelinParabolic.pdf http://eprints.utm.my/id/eprint/26158/ http://dx.doi.org/10.1155/2010/753738 |
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my.utm.261582018-10-31T12:19:59Z http://eprints.utm.my/id/eprint/26158/ Graphene nanoribbon conductance model in parabolic band structure Johari, Zaharah Ismail, Razali M. T., Ahmadi N. A., Amin A. H., Fallahpour TK Electrical engineering. Electronics Nuclear engineering Many experimental measurements have been done on GNR conductance. In this paper, analytical model of GNR conductance is presented. Moreover, comparison with published data which illustrates good agreement between them is studied. Conductance of GNR as a one-dimensional device channel with parabolic band structures near the charge neutrality point is improved. Based on quantum confinement effect, the conductance of GNR in parabolic part of the band structure, also the temperature-dependent conductance which displays minimum conductance near the charge neutrality point are calculated. Graphene nanoribbon (GNR) with parabolic band structure near the minimum band energy terminates Fermi-Dirac integral base method on band structure study. While band structure is parabola, semiconducting GNRs conductance is a function of Fermi-Dirac integral which is based on Maxwell approximation in nondegenerate limit especially for a long channel. Hindawi Publishing Cor p or ation 2010 Article PeerReviewed application/pdf en http://eprints.utm.my/id/eprint/26158/1/MohammadTaghiAhmadi2010_GrapheneNanoribbonConductanceModelinParabolic.pdf Johari, Zaharah and Ismail, Razali and M. T., Ahmadi and N. A., Amin and A. H., Fallahpour (2010) Graphene nanoribbon conductance model in parabolic band structure. Journal Of Nanomaterials, 2010 . 001-004. ISSN 1687-4110 http://dx.doi.org/10.1155/2010/753738 DOI:10.1155/2010/753738 |
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TK Electrical engineering. Electronics Nuclear engineering Johari, Zaharah Ismail, Razali M. T., Ahmadi N. A., Amin A. H., Fallahpour Graphene nanoribbon conductance model in parabolic band structure |
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Many experimental measurements have been done on GNR conductance. In this paper, analytical model of GNR conductance is presented. Moreover, comparison with published data which illustrates good agreement between them is studied. Conductance of GNR as a one-dimensional device channel with parabolic band structures near the charge neutrality point is improved. Based on quantum confinement effect, the conductance of GNR in parabolic part of the band structure, also the temperature-dependent conductance which displays minimum conductance near the charge neutrality point are calculated. Graphene nanoribbon (GNR) with parabolic band structure near the minimum band energy terminates Fermi-Dirac integral base method on band structure study. While band structure is parabola, semiconducting GNRs conductance is a function of Fermi-Dirac integral which is based on Maxwell approximation in nondegenerate limit especially for a long channel. |
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Article |
author |
Johari, Zaharah Ismail, Razali M. T., Ahmadi N. A., Amin A. H., Fallahpour |
author_facet |
Johari, Zaharah Ismail, Razali M. T., Ahmadi N. A., Amin A. H., Fallahpour |
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Johari, Zaharah |
title |
Graphene nanoribbon conductance model in parabolic band structure |
title_short |
Graphene nanoribbon conductance model in parabolic band structure |
title_full |
Graphene nanoribbon conductance model in parabolic band structure |
title_fullStr |
Graphene nanoribbon conductance model in parabolic band structure |
title_full_unstemmed |
Graphene nanoribbon conductance model in parabolic band structure |
title_sort |
graphene nanoribbon conductance model in parabolic band structure |
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Hindawi Publishing Cor p or ation |
publishDate |
2010 |
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http://eprints.utm.my/id/eprint/26158/1/MohammadTaghiAhmadi2010_GrapheneNanoribbonConductanceModelinParabolic.pdf http://eprints.utm.my/id/eprint/26158/ http://dx.doi.org/10.1155/2010/753738 |
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