Cargando…

Mixture of Anthraquinone Sulfo-Derivatives as an Inexpensive Organic Flow Battery Negolyte: Optimization of Battery Cell

Anthraquinone-2,7-disulfonic acid (2,7-AQDS) is a promising organic compound, which is considered as a negolyte for redox flow batteries as well as for other applications. In this work we carried out a well-known reaction of anthraquinone sulfonation to synthesize 2,7-AQDS in mixture with other sulf...

Descripción completa

Detalles Bibliográficos
Autores principales: Petrov, Mikhail, Chikin, Dmitry, Abunaeva, Lilia, Glazkov, Artem, Pichugov, Roman, Vinyukov, Alexey, Levina, Irina, Motyakin, Mikhail, Mezhuev, Yaroslav, Konev, Dmitry, Antipov, Anatoly
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9607404/
https://www.ncbi.nlm.nih.gov/pubmed/36295671
http://dx.doi.org/10.3390/membranes12100912
_version_ 1784818535204126720
author Petrov, Mikhail
Chikin, Dmitry
Abunaeva, Lilia
Glazkov, Artem
Pichugov, Roman
Vinyukov, Alexey
Levina, Irina
Motyakin, Mikhail
Mezhuev, Yaroslav
Konev, Dmitry
Antipov, Anatoly
author_facet Petrov, Mikhail
Chikin, Dmitry
Abunaeva, Lilia
Glazkov, Artem
Pichugov, Roman
Vinyukov, Alexey
Levina, Irina
Motyakin, Mikhail
Mezhuev, Yaroslav
Konev, Dmitry
Antipov, Anatoly
author_sort Petrov, Mikhail
collection PubMed
description Anthraquinone-2,7-disulfonic acid (2,7-AQDS) is a promising organic compound, which is considered as a negolyte for redox flow batteries as well as for other applications. In this work we carried out a well-known reaction of anthraquinone sulfonation to synthesize 2,7-AQDS in mixture with other sulfo-derivatives, namely 2,6-AQDS and 2-AQS. Redox behavior of this mixture was evaluated with cyclic voltammetry and was almost identical to 2,7-AQDS. Mixture was then assessed as a potential negolyte of anthraquinone-bromine redox flow battery. After adjusting membrane-electrode assembly composition (membrane material and flow field)), the cell demonstrated peak power density of 335 mW cm(−2) (at SOC 90%) and capacity utilization, capacity retention and energy efficiency of 87.9, 99.6 and 64.2%, respectively. These values are almost identical or even higher than similar values for flow battery with 2,7-AQDS as a negolyte, while the price of mixture is significantly lower. Therefore, this work unveils the promising possibility of using a mixture of crude sulfonated anthraquinone derivatives mixture as an inexpensive negolyte of RFB.
format Online
Article
Text
id pubmed-9607404
institution National Center for Biotechnology Information
language English
publishDate 2022
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-96074042022-10-28 Mixture of Anthraquinone Sulfo-Derivatives as an Inexpensive Organic Flow Battery Negolyte: Optimization of Battery Cell Petrov, Mikhail Chikin, Dmitry Abunaeva, Lilia Glazkov, Artem Pichugov, Roman Vinyukov, Alexey Levina, Irina Motyakin, Mikhail Mezhuev, Yaroslav Konev, Dmitry Antipov, Anatoly Membranes (Basel) Article Anthraquinone-2,7-disulfonic acid (2,7-AQDS) is a promising organic compound, which is considered as a negolyte for redox flow batteries as well as for other applications. In this work we carried out a well-known reaction of anthraquinone sulfonation to synthesize 2,7-AQDS in mixture with other sulfo-derivatives, namely 2,6-AQDS and 2-AQS. Redox behavior of this mixture was evaluated with cyclic voltammetry and was almost identical to 2,7-AQDS. Mixture was then assessed as a potential negolyte of anthraquinone-bromine redox flow battery. After adjusting membrane-electrode assembly composition (membrane material and flow field)), the cell demonstrated peak power density of 335 mW cm(−2) (at SOC 90%) and capacity utilization, capacity retention and energy efficiency of 87.9, 99.6 and 64.2%, respectively. These values are almost identical or even higher than similar values for flow battery with 2,7-AQDS as a negolyte, while the price of mixture is significantly lower. Therefore, this work unveils the promising possibility of using a mixture of crude sulfonated anthraquinone derivatives mixture as an inexpensive negolyte of RFB. MDPI 2022-09-21 /pmc/articles/PMC9607404/ /pubmed/36295671 http://dx.doi.org/10.3390/membranes12100912 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
Petrov, Mikhail
Chikin, Dmitry
Abunaeva, Lilia
Glazkov, Artem
Pichugov, Roman
Vinyukov, Alexey
Levina, Irina
Motyakin, Mikhail
Mezhuev, Yaroslav
Konev, Dmitry
Antipov, Anatoly
Mixture of Anthraquinone Sulfo-Derivatives as an Inexpensive Organic Flow Battery Negolyte: Optimization of Battery Cell
title Mixture of Anthraquinone Sulfo-Derivatives as an Inexpensive Organic Flow Battery Negolyte: Optimization of Battery Cell
title_full Mixture of Anthraquinone Sulfo-Derivatives as an Inexpensive Organic Flow Battery Negolyte: Optimization of Battery Cell
title_fullStr Mixture of Anthraquinone Sulfo-Derivatives as an Inexpensive Organic Flow Battery Negolyte: Optimization of Battery Cell
title_full_unstemmed Mixture of Anthraquinone Sulfo-Derivatives as an Inexpensive Organic Flow Battery Negolyte: Optimization of Battery Cell
title_short Mixture of Anthraquinone Sulfo-Derivatives as an Inexpensive Organic Flow Battery Negolyte: Optimization of Battery Cell
title_sort mixture of anthraquinone sulfo-derivatives as an inexpensive organic flow battery negolyte: optimization of battery cell
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9607404/
https://www.ncbi.nlm.nih.gov/pubmed/36295671
http://dx.doi.org/10.3390/membranes12100912
work_keys_str_mv AT petrovmikhail mixtureofanthraquinonesulfoderivativesasaninexpensiveorganicflowbatterynegolyteoptimizationofbatterycell
AT chikindmitry mixtureofanthraquinonesulfoderivativesasaninexpensiveorganicflowbatterynegolyteoptimizationofbatterycell
AT abunaevalilia mixtureofanthraquinonesulfoderivativesasaninexpensiveorganicflowbatterynegolyteoptimizationofbatterycell
AT glazkovartem mixtureofanthraquinonesulfoderivativesasaninexpensiveorganicflowbatterynegolyteoptimizationofbatterycell
AT pichugovroman mixtureofanthraquinonesulfoderivativesasaninexpensiveorganicflowbatterynegolyteoptimizationofbatterycell
AT vinyukovalexey mixtureofanthraquinonesulfoderivativesasaninexpensiveorganicflowbatterynegolyteoptimizationofbatterycell
AT levinairina mixtureofanthraquinonesulfoderivativesasaninexpensiveorganicflowbatterynegolyteoptimizationofbatterycell
AT motyakinmikhail mixtureofanthraquinonesulfoderivativesasaninexpensiveorganicflowbatterynegolyteoptimizationofbatterycell
AT mezhuevyaroslav mixtureofanthraquinonesulfoderivativesasaninexpensiveorganicflowbatterynegolyteoptimizationofbatterycell
AT konevdmitry mixtureofanthraquinonesulfoderivativesasaninexpensiveorganicflowbatterynegolyteoptimizationofbatterycell
AT antipovanatoly mixtureofanthraquinonesulfoderivativesasaninexpensiveorganicflowbatterynegolyteoptimizationofbatterycell