Cargando…

High‐Quality Graphene Using Boudouard Reaction

Following the game‐changing high‐pressure CO (HiPco) process that established the first facile route toward large‐scale production of single‐walled carbon nanotubes, CO synthesis of cm‐sized graphene crystals of ultra‐high purity grown during tens of minutes is proposed. The Boudouard reaction serve...

Descripción completa

Detalles Bibliográficos
Autores principales: Grebenko, Artem K., Krasnikov, Dmitry V., Bubis, Anton V., Stolyarov, Vasily S., Vyalikh, Denis V., Makarova, Anna A., Fedorov, Alexander, Aitkulova, Aisuluu, Alekseeva, Alena A., Gilshtein, Evgeniia, Bedran, Zakhar, Shmakov, Alexander N., Alyabyeva, Liudmila, Mozhchil, Rais N., Ionov, Andrey M., Gorshunov, Boris P., Laasonen, Kari, Podzorov, Vitaly, Nasibulin, Albert G.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9036046/
https://www.ncbi.nlm.nih.gov/pubmed/35187847
http://dx.doi.org/10.1002/advs.202200217
_version_ 1784693437561307136
author Grebenko, Artem K.
Krasnikov, Dmitry V.
Bubis, Anton V.
Stolyarov, Vasily S.
Vyalikh, Denis V.
Makarova, Anna A.
Fedorov, Alexander
Aitkulova, Aisuluu
Alekseeva, Alena A.
Gilshtein, Evgeniia
Bedran, Zakhar
Shmakov, Alexander N.
Alyabyeva, Liudmila
Mozhchil, Rais N.
Ionov, Andrey M.
Gorshunov, Boris P.
Laasonen, Kari
Podzorov, Vitaly
Nasibulin, Albert G.
author_facet Grebenko, Artem K.
Krasnikov, Dmitry V.
Bubis, Anton V.
Stolyarov, Vasily S.
Vyalikh, Denis V.
Makarova, Anna A.
Fedorov, Alexander
Aitkulova, Aisuluu
Alekseeva, Alena A.
Gilshtein, Evgeniia
Bedran, Zakhar
Shmakov, Alexander N.
Alyabyeva, Liudmila
Mozhchil, Rais N.
Ionov, Andrey M.
Gorshunov, Boris P.
Laasonen, Kari
Podzorov, Vitaly
Nasibulin, Albert G.
author_sort Grebenko, Artem K.
collection PubMed
description Following the game‐changing high‐pressure CO (HiPco) process that established the first facile route toward large‐scale production of single‐walled carbon nanotubes, CO synthesis of cm‐sized graphene crystals of ultra‐high purity grown during tens of minutes is proposed. The Boudouard reaction serves for the first time to produce individual monolayer structures on the surface of a metal catalyst, thereby providing a chemical vapor deposition technique free from molecular and atomic hydrogen as well as vacuum conditions. This approach facilitates inhibition of the graphene nucleation from the CO/CO(2) mixture and maintains a high growth rate of graphene seeds reaching large‐scale monocrystals. Unique features of the Boudouard reaction coupled with CO‐driven catalyst engineering ensure not only suppression of the second layer growth but also provide a simple and reliable technique for surface cleaning. Aside from being a novel carbon source, carbon monoxide ensures peculiar modification of catalyst and in general opens avenues for breakthrough graphene‐catalyst composite production.
format Online
Article
Text
id pubmed-9036046
institution National Center for Biotechnology Information
language English
publishDate 2022
publisher John Wiley and Sons Inc.
record_format MEDLINE/PubMed
spelling pubmed-90360462022-04-27 High‐Quality Graphene Using Boudouard Reaction Grebenko, Artem K. Krasnikov, Dmitry V. Bubis, Anton V. Stolyarov, Vasily S. Vyalikh, Denis V. Makarova, Anna A. Fedorov, Alexander Aitkulova, Aisuluu Alekseeva, Alena A. Gilshtein, Evgeniia Bedran, Zakhar Shmakov, Alexander N. Alyabyeva, Liudmila Mozhchil, Rais N. Ionov, Andrey M. Gorshunov, Boris P. Laasonen, Kari Podzorov, Vitaly Nasibulin, Albert G. Adv Sci (Weinh) Research Articles Following the game‐changing high‐pressure CO (HiPco) process that established the first facile route toward large‐scale production of single‐walled carbon nanotubes, CO synthesis of cm‐sized graphene crystals of ultra‐high purity grown during tens of minutes is proposed. The Boudouard reaction serves for the first time to produce individual monolayer structures on the surface of a metal catalyst, thereby providing a chemical vapor deposition technique free from molecular and atomic hydrogen as well as vacuum conditions. This approach facilitates inhibition of the graphene nucleation from the CO/CO(2) mixture and maintains a high growth rate of graphene seeds reaching large‐scale monocrystals. Unique features of the Boudouard reaction coupled with CO‐driven catalyst engineering ensure not only suppression of the second layer growth but also provide a simple and reliable technique for surface cleaning. Aside from being a novel carbon source, carbon monoxide ensures peculiar modification of catalyst and in general opens avenues for breakthrough graphene‐catalyst composite production. John Wiley and Sons Inc. 2022-02-20 /pmc/articles/PMC9036046/ /pubmed/35187847 http://dx.doi.org/10.1002/advs.202200217 Text en © 2022 The Authors. Advanced Science published by Wiley‐VCH GmbH https://creativecommons.org/licenses/by/4.0/This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Articles
Grebenko, Artem K.
Krasnikov, Dmitry V.
Bubis, Anton V.
Stolyarov, Vasily S.
Vyalikh, Denis V.
Makarova, Anna A.
Fedorov, Alexander
Aitkulova, Aisuluu
Alekseeva, Alena A.
Gilshtein, Evgeniia
Bedran, Zakhar
Shmakov, Alexander N.
Alyabyeva, Liudmila
Mozhchil, Rais N.
Ionov, Andrey M.
Gorshunov, Boris P.
Laasonen, Kari
Podzorov, Vitaly
Nasibulin, Albert G.
High‐Quality Graphene Using Boudouard Reaction
title High‐Quality Graphene Using Boudouard Reaction
title_full High‐Quality Graphene Using Boudouard Reaction
title_fullStr High‐Quality Graphene Using Boudouard Reaction
title_full_unstemmed High‐Quality Graphene Using Boudouard Reaction
title_short High‐Quality Graphene Using Boudouard Reaction
title_sort high‐quality graphene using boudouard reaction
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9036046/
https://www.ncbi.nlm.nih.gov/pubmed/35187847
http://dx.doi.org/10.1002/advs.202200217
work_keys_str_mv AT grebenkoartemk highqualitygrapheneusingboudouardreaction
AT krasnikovdmitryv highqualitygrapheneusingboudouardreaction
AT bubisantonv highqualitygrapheneusingboudouardreaction
AT stolyarovvasilys highqualitygrapheneusingboudouardreaction
AT vyalikhdenisv highqualitygrapheneusingboudouardreaction
AT makarovaannaa highqualitygrapheneusingboudouardreaction
AT fedorovalexander highqualitygrapheneusingboudouardreaction
AT aitkulovaaisuluu highqualitygrapheneusingboudouardreaction
AT alekseevaalenaa highqualitygrapheneusingboudouardreaction
AT gilshteinevgeniia highqualitygrapheneusingboudouardreaction
AT bedranzakhar highqualitygrapheneusingboudouardreaction
AT shmakovalexandern highqualitygrapheneusingboudouardreaction
AT alyabyevaliudmila highqualitygrapheneusingboudouardreaction
AT mozhchilraisn highqualitygrapheneusingboudouardreaction
AT ionovandreym highqualitygrapheneusingboudouardreaction
AT gorshunovborisp highqualitygrapheneusingboudouardreaction
AT laasonenkari highqualitygrapheneusingboudouardreaction
AT podzorovvitaly highqualitygrapheneusingboudouardreaction
AT nasibulinalbertg highqualitygrapheneusingboudouardreaction