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On the path to aqueous organic redox flow batteries: Alizarin red S alkaline negolyte. Performance evaluation and photochemical studies

Title
On the path to aqueous organic redox flow batteries: Alizarin red S alkaline negolyte. Performance evaluation and photochemical studies
Type
Article in International Scientific Journal
Year
2021-08-15
Authors
Alan Lima
(Author)
Other
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Ricardo Pereira
(Author)
Other
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João Azevedo
(Author)
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Adélio Mendes
(Author)
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Sérgio Melo
(Author)
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Journal
Vol. 336
Initial page: 116364
ISSN: 0167-7322
Publisher: Elsevier
Indexing
Publicação em ISI Web of Knowledge ISI Web of Knowledge - 0 Citations
Publicação em Scopus Scopus - 0 Citations
Scientific classification
FOS: Engineering and technology > Chemical engineering
CORDIS: Physical sciences > Chemistry
Other information
Authenticus ID: P-00V-1NX
Resumo (PT):
Abstract (EN): An aqueous organic redox flow battery (AORFB) based on Alizarin Red S, 3,4-dihydroxy-9,10-anthraqui none-2-sulfonic acid (ARS) and potassium ferrocyanide (PF) was studied in alkaline medium. Chargedischarge processes and potential-current response behaviour in a full cell combining ARS, as the negolyte, and PF, as the posolyte, were investigated. The diffusion coefficient (D) and kinetic rate constant (k(0)) of ARS were obtained from electrochemical measurements indicating a two-electron reduction reaction of ARS. The electrochemical stability test of the redox pair showed that the negolyte (ARS), even when subjected to extreme potential and current conditions, does not lose its redox activity and exhibits good performance without significant losses of efficiencies in a single cell test. The AORFB was found stable with an average storage capacity of 5.9 mWh L-1 and capacity retention of 89 and 91.5% for a single cell test before and after stability test, respectively. Additionally, the photophysics of ARS was investigated aiming to rationalize the stability of the compound as negolyte. The system showed to have potential as an organic aqueous flow battery closely related to the electrochemical stability and efficiencies associated to ARS.
Language: English
Type (Professor's evaluation): Scientific
No. of pages: 9
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