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A Blueprint for the Synthesis and Characterization of Thiolated Graphene

Graphene derivatization to either engineer its physical and chemical properties or overcome the problem of the facile synthesis of nanographenes is a subject of significant attention in the nanomaterials research community. In this paper, we propose a facile and scalable method for the synthesis of...

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Autores principales: Rabchinskii, Maxim K., Sysoev, Victor V., Ryzhkov, Sergei A., Eliseyev, Ilya A., Stolyarova, Dina Yu., Antonov, Grigorii A., Struchkov, Nikolai S., Brzhezinskaya, Maria, Kirilenko, Demid A., Pavlov, Sergei I., Palenov, Mihail E., Mishin, Maxim V., Kvashenkina, Olga E., Gabdullin, Pavel G., Varezhnikov, Alexey S., Solomatin, Maksim A., Brunkov, Pavel N.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8746421/
https://www.ncbi.nlm.nih.gov/pubmed/35009995
http://dx.doi.org/10.3390/nano12010045
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author Rabchinskii, Maxim K.
Sysoev, Victor V.
Ryzhkov, Sergei A.
Eliseyev, Ilya A.
Stolyarova, Dina Yu.
Antonov, Grigorii A.
Struchkov, Nikolai S.
Brzhezinskaya, Maria
Kirilenko, Demid A.
Pavlov, Sergei I.
Palenov, Mihail E.
Mishin, Maxim V.
Kvashenkina, Olga E.
Gabdullin, Pavel G.
Varezhnikov, Alexey S.
Solomatin, Maksim A.
Brunkov, Pavel N.
author_facet Rabchinskii, Maxim K.
Sysoev, Victor V.
Ryzhkov, Sergei A.
Eliseyev, Ilya A.
Stolyarova, Dina Yu.
Antonov, Grigorii A.
Struchkov, Nikolai S.
Brzhezinskaya, Maria
Kirilenko, Demid A.
Pavlov, Sergei I.
Palenov, Mihail E.
Mishin, Maxim V.
Kvashenkina, Olga E.
Gabdullin, Pavel G.
Varezhnikov, Alexey S.
Solomatin, Maksim A.
Brunkov, Pavel N.
author_sort Rabchinskii, Maxim K.
collection PubMed
description Graphene derivatization to either engineer its physical and chemical properties or overcome the problem of the facile synthesis of nanographenes is a subject of significant attention in the nanomaterials research community. In this paper, we propose a facile and scalable method for the synthesis of thiolated graphene via a two-step liquid-phase treatment of graphene oxide (GO). Employing the core-level methods, the introduction of up to 5.1 at.% of thiols is indicated with the simultaneous rise of the C/O ratio to 16.8. The crumpling of the graphene layer upon thiolation without its perforation is pointed out by microscopic and Raman studies. The conductance of thiolated graphene is revealed to be driven by the Mott hopping mechanism with the sheet resistance values of 2.15 kΩ/sq and dependable on the environment. The preliminary results on the chemiresistive effect of these films upon exposure to ethanol vapors in the mix with dry and humid air are shown. Finally, the work function value and valence band structure of thiolated graphene are analyzed. Taken together, the developed method and findings of the morphology and physics of the thiolated graphene guide the further application of this derivative in energy storage, sensing devices, and smart materials.
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spelling pubmed-87464212022-01-11 A Blueprint for the Synthesis and Characterization of Thiolated Graphene Rabchinskii, Maxim K. Sysoev, Victor V. Ryzhkov, Sergei A. Eliseyev, Ilya A. Stolyarova, Dina Yu. Antonov, Grigorii A. Struchkov, Nikolai S. Brzhezinskaya, Maria Kirilenko, Demid A. Pavlov, Sergei I. Palenov, Mihail E. Mishin, Maxim V. Kvashenkina, Olga E. Gabdullin, Pavel G. Varezhnikov, Alexey S. Solomatin, Maksim A. Brunkov, Pavel N. Nanomaterials (Basel) Article Graphene derivatization to either engineer its physical and chemical properties or overcome the problem of the facile synthesis of nanographenes is a subject of significant attention in the nanomaterials research community. In this paper, we propose a facile and scalable method for the synthesis of thiolated graphene via a two-step liquid-phase treatment of graphene oxide (GO). Employing the core-level methods, the introduction of up to 5.1 at.% of thiols is indicated with the simultaneous rise of the C/O ratio to 16.8. The crumpling of the graphene layer upon thiolation without its perforation is pointed out by microscopic and Raman studies. The conductance of thiolated graphene is revealed to be driven by the Mott hopping mechanism with the sheet resistance values of 2.15 kΩ/sq and dependable on the environment. The preliminary results on the chemiresistive effect of these films upon exposure to ethanol vapors in the mix with dry and humid air are shown. Finally, the work function value and valence band structure of thiolated graphene are analyzed. Taken together, the developed method and findings of the morphology and physics of the thiolated graphene guide the further application of this derivative in energy storage, sensing devices, and smart materials. MDPI 2021-12-24 /pmc/articles/PMC8746421/ /pubmed/35009995 http://dx.doi.org/10.3390/nano12010045 Text en © 2021 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Rabchinskii, Maxim K.
Sysoev, Victor V.
Ryzhkov, Sergei A.
Eliseyev, Ilya A.
Stolyarova, Dina Yu.
Antonov, Grigorii A.
Struchkov, Nikolai S.
Brzhezinskaya, Maria
Kirilenko, Demid A.
Pavlov, Sergei I.
Palenov, Mihail E.
Mishin, Maxim V.
Kvashenkina, Olga E.
Gabdullin, Pavel G.
Varezhnikov, Alexey S.
Solomatin, Maksim A.
Brunkov, Pavel N.
A Blueprint for the Synthesis and Characterization of Thiolated Graphene
title A Blueprint for the Synthesis and Characterization of Thiolated Graphene
title_full A Blueprint for the Synthesis and Characterization of Thiolated Graphene
title_fullStr A Blueprint for the Synthesis and Characterization of Thiolated Graphene
title_full_unstemmed A Blueprint for the Synthesis and Characterization of Thiolated Graphene
title_short A Blueprint for the Synthesis and Characterization of Thiolated Graphene
title_sort blueprint for the synthesis and characterization of thiolated graphene
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8746421/
https://www.ncbi.nlm.nih.gov/pubmed/35009995
http://dx.doi.org/10.3390/nano12010045
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