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Correlating Atomic Structure and Transport in Suspended Graphene Nanoribbons

[Image: see text] Graphene nanoribbons (GNRs) are promising candidates for next generation integrated circuit (IC) components; this fact motivates exploration of the relationship between crystallographic structure and transport of graphene patterned at IC-relevant length scales (<10 nm). We repor...

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Autores principales: Qi, Zhengqing John, Rodríguez-Manzo, Julio A., Botello-Méndez, Andrés R., Hong, Sung Ju, Stach, Eric A., Park, Yung Woo, Charlier, Jean-Christophe, Drndić, Marija, Johnson, A. T. Charlie
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2014
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4134140/
https://www.ncbi.nlm.nih.gov/pubmed/24954396
http://dx.doi.org/10.1021/nl501872x
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author Qi, Zhengqing John
Rodríguez-Manzo, Julio A.
Botello-Méndez, Andrés R.
Hong, Sung Ju
Stach, Eric A.
Park, Yung Woo
Charlier, Jean-Christophe
Drndić, Marija
Johnson, A. T. Charlie
author_facet Qi, Zhengqing John
Rodríguez-Manzo, Julio A.
Botello-Méndez, Andrés R.
Hong, Sung Ju
Stach, Eric A.
Park, Yung Woo
Charlier, Jean-Christophe
Drndić, Marija
Johnson, A. T. Charlie
author_sort Qi, Zhengqing John
collection PubMed
description [Image: see text] Graphene nanoribbons (GNRs) are promising candidates for next generation integrated circuit (IC) components; this fact motivates exploration of the relationship between crystallographic structure and transport of graphene patterned at IC-relevant length scales (<10 nm). We report on the controlled fabrication of pristine, freestanding GNRs with widths as small as 0.7 nm, paired with simultaneous lattice-resolution imaging and electrical transport characterization, all conducted within an aberration-corrected transmission electron microscope. Few-layer GNRs very frequently formed bonded-bilayers and were remarkably robust, sustaining currents in excess of 1.5 μA per carbon bond across a 5 atom-wide ribbon. We found that the intrinsic conductance of a sub-10 nm bonded bilayer GNR scaled with width as G(BL)(w) ≈ 3/4(e(2)/h)w, where w is the width in nanometers, while a monolayer GNR was roughly five times less conductive. Nanosculpted, crystalline monolayer GNRs exhibited armchair-terminated edges after current annealing, presenting a pathway for the controlled fabrication of semiconducting GNRs with known edge geometry. Finally, we report on simulations of quantum transport in GNRs that are in qualitative agreement with the observations.
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spelling pubmed-41341402015-06-23 Correlating Atomic Structure and Transport in Suspended Graphene Nanoribbons Qi, Zhengqing John Rodríguez-Manzo, Julio A. Botello-Méndez, Andrés R. Hong, Sung Ju Stach, Eric A. Park, Yung Woo Charlier, Jean-Christophe Drndić, Marija Johnson, A. T. Charlie Nano Lett [Image: see text] Graphene nanoribbons (GNRs) are promising candidates for next generation integrated circuit (IC) components; this fact motivates exploration of the relationship between crystallographic structure and transport of graphene patterned at IC-relevant length scales (<10 nm). We report on the controlled fabrication of pristine, freestanding GNRs with widths as small as 0.7 nm, paired with simultaneous lattice-resolution imaging and electrical transport characterization, all conducted within an aberration-corrected transmission electron microscope. Few-layer GNRs very frequently formed bonded-bilayers and were remarkably robust, sustaining currents in excess of 1.5 μA per carbon bond across a 5 atom-wide ribbon. We found that the intrinsic conductance of a sub-10 nm bonded bilayer GNR scaled with width as G(BL)(w) ≈ 3/4(e(2)/h)w, where w is the width in nanometers, while a monolayer GNR was roughly five times less conductive. Nanosculpted, crystalline monolayer GNRs exhibited armchair-terminated edges after current annealing, presenting a pathway for the controlled fabrication of semiconducting GNRs with known edge geometry. Finally, we report on simulations of quantum transport in GNRs that are in qualitative agreement with the observations. American Chemical Society 2014-06-23 2014-08-13 /pmc/articles/PMC4134140/ /pubmed/24954396 http://dx.doi.org/10.1021/nl501872x Text en Copyright © 2014 American Chemical Society Terms of Use (http://pubs.acs.org/page/policy/authorchoice_termsofuse.html)
spellingShingle Qi, Zhengqing John
Rodríguez-Manzo, Julio A.
Botello-Méndez, Andrés R.
Hong, Sung Ju
Stach, Eric A.
Park, Yung Woo
Charlier, Jean-Christophe
Drndić, Marija
Johnson, A. T. Charlie
Correlating Atomic Structure and Transport in Suspended Graphene Nanoribbons
title Correlating Atomic Structure and Transport in Suspended Graphene Nanoribbons
title_full Correlating Atomic Structure and Transport in Suspended Graphene Nanoribbons
title_fullStr Correlating Atomic Structure and Transport in Suspended Graphene Nanoribbons
title_full_unstemmed Correlating Atomic Structure and Transport in Suspended Graphene Nanoribbons
title_short Correlating Atomic Structure and Transport in Suspended Graphene Nanoribbons
title_sort correlating atomic structure and transport in suspended graphene nanoribbons
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4134140/
https://www.ncbi.nlm.nih.gov/pubmed/24954396
http://dx.doi.org/10.1021/nl501872x
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