Short-channel field-effect transistors with 9-atom and 13-atom wide graphene nanoribbons

Graphene nanoribbons show promise for high-performance field-effect transistors, however they often suffer from short lengths and wide band gaps. Here, the authors use a bottom-up synthesis approach to fabricate 9- and 13-atom wide ribbons, enabling short-channel transistors with 105 on-off current...

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Autores principales: Juan Pablo Llinas, Andrew Fairbrother, Gabriela Borin Barin, Wu Shi, Kyunghoon Lee, Shuang Wu, Byung Yong Choi, Rohit Braganza, Jordan Lear, Nicholas Kau, Wonwoo Choi, Chen Chen, Zahra Pedramrazi, Tim Dumslaff, Akimitsu Narita, Xinliang Feng, Klaus Müllen, Felix Fischer, Alex Zettl, Pascal Ruffieux, Eli Yablonovitch, Michael Crommie, Roman Fasel, Jeffrey Bokor
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Lenguaje:EN
Publicado: Nature Portfolio 2017
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Acceso en línea:https://doaj.org/article/208a83c0a53e4f859e1360755aa6fe93
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spelling oai:doaj.org-article:208a83c0a53e4f859e1360755aa6fe932021-12-02T17:06:22ZShort-channel field-effect transistors with 9-atom and 13-atom wide graphene nanoribbons10.1038/s41467-017-00734-x2041-1723https://doaj.org/article/208a83c0a53e4f859e1360755aa6fe932017-09-01T00:00:00Zhttps://doi.org/10.1038/s41467-017-00734-xhttps://doaj.org/toc/2041-1723Graphene nanoribbons show promise for high-performance field-effect transistors, however they often suffer from short lengths and wide band gaps. Here, the authors use a bottom-up synthesis approach to fabricate 9- and 13-atom wide ribbons, enabling short-channel transistors with 105 on-off current ratio.Juan Pablo LlinasAndrew FairbrotherGabriela Borin BarinWu ShiKyunghoon LeeShuang WuByung Yong ChoiRohit BraganzaJordan LearNicholas KauWonwoo ChoiChen ChenZahra PedramraziTim DumslaffAkimitsu NaritaXinliang FengKlaus MüllenFelix FischerAlex ZettlPascal RuffieuxEli YablonovitchMichael CrommieRoman FaselJeffrey BokorNature PortfolioarticleScienceQENNature Communications, Vol 8, Iss 1, Pp 1-6 (2017)
institution DOAJ
collection DOAJ
language EN
topic Science
Q
spellingShingle Science
Q
Juan Pablo Llinas
Andrew Fairbrother
Gabriela Borin Barin
Wu Shi
Kyunghoon Lee
Shuang Wu
Byung Yong Choi
Rohit Braganza
Jordan Lear
Nicholas Kau
Wonwoo Choi
Chen Chen
Zahra Pedramrazi
Tim Dumslaff
Akimitsu Narita
Xinliang Feng
Klaus Müllen
Felix Fischer
Alex Zettl
Pascal Ruffieux
Eli Yablonovitch
Michael Crommie
Roman Fasel
Jeffrey Bokor
Short-channel field-effect transistors with 9-atom and 13-atom wide graphene nanoribbons
description Graphene nanoribbons show promise for high-performance field-effect transistors, however they often suffer from short lengths and wide band gaps. Here, the authors use a bottom-up synthesis approach to fabricate 9- and 13-atom wide ribbons, enabling short-channel transistors with 105 on-off current ratio.
format article
author Juan Pablo Llinas
Andrew Fairbrother
Gabriela Borin Barin
Wu Shi
Kyunghoon Lee
Shuang Wu
Byung Yong Choi
Rohit Braganza
Jordan Lear
Nicholas Kau
Wonwoo Choi
Chen Chen
Zahra Pedramrazi
Tim Dumslaff
Akimitsu Narita
Xinliang Feng
Klaus Müllen
Felix Fischer
Alex Zettl
Pascal Ruffieux
Eli Yablonovitch
Michael Crommie
Roman Fasel
Jeffrey Bokor
author_facet Juan Pablo Llinas
Andrew Fairbrother
Gabriela Borin Barin
Wu Shi
Kyunghoon Lee
Shuang Wu
Byung Yong Choi
Rohit Braganza
Jordan Lear
Nicholas Kau
Wonwoo Choi
Chen Chen
Zahra Pedramrazi
Tim Dumslaff
Akimitsu Narita
Xinliang Feng
Klaus Müllen
Felix Fischer
Alex Zettl
Pascal Ruffieux
Eli Yablonovitch
Michael Crommie
Roman Fasel
Jeffrey Bokor
author_sort Juan Pablo Llinas
title Short-channel field-effect transistors with 9-atom and 13-atom wide graphene nanoribbons
title_short Short-channel field-effect transistors with 9-atom and 13-atom wide graphene nanoribbons
title_full Short-channel field-effect transistors with 9-atom and 13-atom wide graphene nanoribbons
title_fullStr Short-channel field-effect transistors with 9-atom and 13-atom wide graphene nanoribbons
title_full_unstemmed Short-channel field-effect transistors with 9-atom and 13-atom wide graphene nanoribbons
title_sort short-channel field-effect transistors with 9-atom and 13-atom wide graphene nanoribbons
publisher Nature Portfolio
publishDate 2017
url https://doaj.org/article/208a83c0a53e4f859e1360755aa6fe93
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