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Supercapacitor Properties of rGO-TiO(2) Nanocomposite in Two-component Acidic Electrolyte

The electrochemical properties of the highly porous reduced graphene oxide/titanium dioxide (rGO/TiO(2)) nanocomposite were studied to estimate the possibility of using it as a supercapacitor electrode. Granular aerogel rGO/TiO(2) was used as an initial material for the first time of manufacturing t...

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Autores principales: Volfkovich, Yury M., Rychagov, Alexey Y., Sosenkin, Valentin E., Baskakov, Sergey A., Kabachkov, Eugene N., Shulga, Yury M.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9654705/
https://www.ncbi.nlm.nih.gov/pubmed/36363445
http://dx.doi.org/10.3390/ma15217856
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author Volfkovich, Yury M.
Rychagov, Alexey Y.
Sosenkin, Valentin E.
Baskakov, Sergey A.
Kabachkov, Eugene N.
Shulga, Yury M.
author_facet Volfkovich, Yury M.
Rychagov, Alexey Y.
Sosenkin, Valentin E.
Baskakov, Sergey A.
Kabachkov, Eugene N.
Shulga, Yury M.
author_sort Volfkovich, Yury M.
collection PubMed
description The electrochemical properties of the highly porous reduced graphene oxide/titanium dioxide (rGO/TiO(2)) nanocomposite were studied to estimate the possibility of using it as a supercapacitor electrode. Granular aerogel rGO/TiO(2) was used as an initial material for the first time of manufacturing the electrode. For the aerogel synthesis, industrial TiO(2) Hombikat UV100 with a high specific surface area and anatase structure was used, and the aerogel was carried out with hydrazine vapor. Porous structure and hydrophilic–hydrophobic properties of the nanocomposite were studied with a method of standard contact porosimetry. This is important for a supercapacitor containing an aqueous electrolyte. It was found that the hydrophilic specific surface area of the nanocomposite was approximately half of the total surface area. As a result of electrochemical hydrogenation in the region of zero potential according to the scale of a standard hydrogen electrode, a reversible Faraday reaction with high recharge rate (exchange currents) was observed. The characteristic charging time of the indicated Faraday reaction does not exceed several tens of seconds, which makes it possible to consider the use of this pseudocapacitance in the systems of fast energy storage such as hybrid supercapacitors. Sufficiently high limiting pseudo-capacitance (about 1200 C/g TiO(2)) of the reaction was obtained.
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spelling pubmed-96547052022-11-15 Supercapacitor Properties of rGO-TiO(2) Nanocomposite in Two-component Acidic Electrolyte Volfkovich, Yury M. Rychagov, Alexey Y. Sosenkin, Valentin E. Baskakov, Sergey A. Kabachkov, Eugene N. Shulga, Yury M. Materials (Basel) Article The electrochemical properties of the highly porous reduced graphene oxide/titanium dioxide (rGO/TiO(2)) nanocomposite were studied to estimate the possibility of using it as a supercapacitor electrode. Granular aerogel rGO/TiO(2) was used as an initial material for the first time of manufacturing the electrode. For the aerogel synthesis, industrial TiO(2) Hombikat UV100 with a high specific surface area and anatase structure was used, and the aerogel was carried out with hydrazine vapor. Porous structure and hydrophilic–hydrophobic properties of the nanocomposite were studied with a method of standard contact porosimetry. This is important for a supercapacitor containing an aqueous electrolyte. It was found that the hydrophilic specific surface area of the nanocomposite was approximately half of the total surface area. As a result of electrochemical hydrogenation in the region of zero potential according to the scale of a standard hydrogen electrode, a reversible Faraday reaction with high recharge rate (exchange currents) was observed. The characteristic charging time of the indicated Faraday reaction does not exceed several tens of seconds, which makes it possible to consider the use of this pseudocapacitance in the systems of fast energy storage such as hybrid supercapacitors. Sufficiently high limiting pseudo-capacitance (about 1200 C/g TiO(2)) of the reaction was obtained. MDPI 2022-11-07 /pmc/articles/PMC9654705/ /pubmed/36363445 http://dx.doi.org/10.3390/ma15217856 Text en © 2022 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
Volfkovich, Yury M.
Rychagov, Alexey Y.
Sosenkin, Valentin E.
Baskakov, Sergey A.
Kabachkov, Eugene N.
Shulga, Yury M.
Supercapacitor Properties of rGO-TiO(2) Nanocomposite in Two-component Acidic Electrolyte
title Supercapacitor Properties of rGO-TiO(2) Nanocomposite in Two-component Acidic Electrolyte
title_full Supercapacitor Properties of rGO-TiO(2) Nanocomposite in Two-component Acidic Electrolyte
title_fullStr Supercapacitor Properties of rGO-TiO(2) Nanocomposite in Two-component Acidic Electrolyte
title_full_unstemmed Supercapacitor Properties of rGO-TiO(2) Nanocomposite in Two-component Acidic Electrolyte
title_short Supercapacitor Properties of rGO-TiO(2) Nanocomposite in Two-component Acidic Electrolyte
title_sort supercapacitor properties of rgo-tio(2) nanocomposite in two-component acidic electrolyte
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9654705/
https://www.ncbi.nlm.nih.gov/pubmed/36363445
http://dx.doi.org/10.3390/ma15217856
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