Cargando…

Resolving charge-transfer and mass-transfer processes of VO(2+)/VO(2)(+) redox species across the electrode/electrolyte interface using electrochemical impedance spectroscopy for vanadium redox flow battery

Electrochemical impedance spectroscopy is used to investigate the charge-transfer and mass-transfer processes of VO(2+)/VO(2)(+) (V(4+)/V(5+)) redox species across the carbon-modified glassy carbon disk electrode/electrolyte interface. The features of the EIS patterns depend on the potential, concen...

Descripción completa

Detalles Bibliográficos
Autores principales: Leuaa, Pradipkumar, Priyadarshani, Divya, Choudhury, Debittree, Maurya, Rajan, Neergat, Manoj
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9056327/
https://www.ncbi.nlm.nih.gov/pubmed/35516052
http://dx.doi.org/10.1039/d0ra05224h
_version_ 1784697612608208896
author Leuaa, Pradipkumar
Priyadarshani, Divya
Choudhury, Debittree
Maurya, Rajan
Neergat, Manoj
author_facet Leuaa, Pradipkumar
Priyadarshani, Divya
Choudhury, Debittree
Maurya, Rajan
Neergat, Manoj
author_sort Leuaa, Pradipkumar
collection PubMed
description Electrochemical impedance spectroscopy is used to investigate the charge-transfer and mass-transfer processes of VO(2+)/VO(2)(+) (V(4+)/V(5+)) redox species across the carbon-modified glassy carbon disk electrode/electrolyte interface. The features of the EIS patterns depend on the potential, concentrations of the redox species and mass-transport conditions at the electrode/electrolyte interface. With the starting electrolyte containing either only V(4+) or V(5+) redox species, EIS shows a straight line capacitor feature, as no oxidation or reduction reaction take place at the measured open circuit potential (OCP). With the electrolyte containing equimolar concentration of V(4+) and V(5+), EIS pattern has both charge-transfer and mass-transfer features at the equilibrium potential. The features of the charge-transfer process are observed to be influenced by the mass-transfer process. Optimum concentrations of the V(4+)/V(5+) redox species and supporting H(2)SO(4) electrolyte are required to resolve the EIS features corresponding to the underlying physical processes. The semi-infinite linear diffusion characteristics of the V(4+)/V(5+) redox species observed with a static condition of the electrode converges to that of a finite diffusion under hydrodynamic condition.
format Online
Article
Text
id pubmed-9056327
institution National Center for Biotechnology Information
language English
publishDate 2020
publisher The Royal Society of Chemistry
record_format MEDLINE/PubMed
spelling pubmed-90563272022-05-04 Resolving charge-transfer and mass-transfer processes of VO(2+)/VO(2)(+) redox species across the electrode/electrolyte interface using electrochemical impedance spectroscopy for vanadium redox flow battery Leuaa, Pradipkumar Priyadarshani, Divya Choudhury, Debittree Maurya, Rajan Neergat, Manoj RSC Adv Chemistry Electrochemical impedance spectroscopy is used to investigate the charge-transfer and mass-transfer processes of VO(2+)/VO(2)(+) (V(4+)/V(5+)) redox species across the carbon-modified glassy carbon disk electrode/electrolyte interface. The features of the EIS patterns depend on the potential, concentrations of the redox species and mass-transport conditions at the electrode/electrolyte interface. With the starting electrolyte containing either only V(4+) or V(5+) redox species, EIS shows a straight line capacitor feature, as no oxidation or reduction reaction take place at the measured open circuit potential (OCP). With the electrolyte containing equimolar concentration of V(4+) and V(5+), EIS pattern has both charge-transfer and mass-transfer features at the equilibrium potential. The features of the charge-transfer process are observed to be influenced by the mass-transfer process. Optimum concentrations of the V(4+)/V(5+) redox species and supporting H(2)SO(4) electrolyte are required to resolve the EIS features corresponding to the underlying physical processes. The semi-infinite linear diffusion characteristics of the V(4+)/V(5+) redox species observed with a static condition of the electrode converges to that of a finite diffusion under hydrodynamic condition. The Royal Society of Chemistry 2020-08-20 /pmc/articles/PMC9056327/ /pubmed/35516052 http://dx.doi.org/10.1039/d0ra05224h Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Leuaa, Pradipkumar
Priyadarshani, Divya
Choudhury, Debittree
Maurya, Rajan
Neergat, Manoj
Resolving charge-transfer and mass-transfer processes of VO(2+)/VO(2)(+) redox species across the electrode/electrolyte interface using electrochemical impedance spectroscopy for vanadium redox flow battery
title Resolving charge-transfer and mass-transfer processes of VO(2+)/VO(2)(+) redox species across the electrode/electrolyte interface using electrochemical impedance spectroscopy for vanadium redox flow battery
title_full Resolving charge-transfer and mass-transfer processes of VO(2+)/VO(2)(+) redox species across the electrode/electrolyte interface using electrochemical impedance spectroscopy for vanadium redox flow battery
title_fullStr Resolving charge-transfer and mass-transfer processes of VO(2+)/VO(2)(+) redox species across the electrode/electrolyte interface using electrochemical impedance spectroscopy for vanadium redox flow battery
title_full_unstemmed Resolving charge-transfer and mass-transfer processes of VO(2+)/VO(2)(+) redox species across the electrode/electrolyte interface using electrochemical impedance spectroscopy for vanadium redox flow battery
title_short Resolving charge-transfer and mass-transfer processes of VO(2+)/VO(2)(+) redox species across the electrode/electrolyte interface using electrochemical impedance spectroscopy for vanadium redox flow battery
title_sort resolving charge-transfer and mass-transfer processes of vo(2+)/vo(2)(+) redox species across the electrode/electrolyte interface using electrochemical impedance spectroscopy for vanadium redox flow battery
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9056327/
https://www.ncbi.nlm.nih.gov/pubmed/35516052
http://dx.doi.org/10.1039/d0ra05224h
work_keys_str_mv AT leuaapradipkumar resolvingchargetransferandmasstransferprocessesofvo2vo2redoxspeciesacrosstheelectrodeelectrolyteinterfaceusingelectrochemicalimpedancespectroscopyforvanadiumredoxflowbattery
AT priyadarshanidivya resolvingchargetransferandmasstransferprocessesofvo2vo2redoxspeciesacrosstheelectrodeelectrolyteinterfaceusingelectrochemicalimpedancespectroscopyforvanadiumredoxflowbattery
AT choudhurydebittree resolvingchargetransferandmasstransferprocessesofvo2vo2redoxspeciesacrosstheelectrodeelectrolyteinterfaceusingelectrochemicalimpedancespectroscopyforvanadiumredoxflowbattery
AT mauryarajan resolvingchargetransferandmasstransferprocessesofvo2vo2redoxspeciesacrosstheelectrodeelectrolyteinterfaceusingelectrochemicalimpedancespectroscopyforvanadiumredoxflowbattery
AT neergatmanoj resolvingchargetransferandmasstransferprocessesofvo2vo2redoxspeciesacrosstheelectrodeelectrolyteinterfaceusingelectrochemicalimpedancespectroscopyforvanadiumredoxflowbattery