Scanning Electrochemical Microscopy Meets Optical Microscopy: Probing the Local Paths of Charge Transfer Operando in Booster-Microparticles for Flow Batteries

dc.contributor.authorMoghaddam Mahdi
dc.contributor.authorGodeffroy Louis
dc.contributor.authorJasielec Jerzy J.
dc.contributor.authorKostopoulos Nikolaos
dc.contributor.authorNoël Jean-Marc
dc.contributor.authorPiquemal Jean-Yves
dc.contributor.authorLemineur Jean-François
dc.contributor.authorPeljo Pekka
dc.contributor.authorKanoufi Frédéric
dc.contributor.organizationfi=materiaalitekniikka|en=Materials Engineering|
dc.contributor.organization-code1.2.246.10.2458963.20.80931480620
dc.contributor.organization-code2610202
dc.converis.publication-id404682512
dc.converis.urlhttps://research.utu.fi/converis/portal/Publication/404682512
dc.date.accessioned2025-08-28T03:23:29Z
dc.date.available2025-08-28T03:23:29Z
dc.description.abstractUnderstanding the oxidation/reduction dynamics of secondary microparticles formed from agglomerated nanoscale primary particles is crucial for advancing electrochemical energy storage technologies. In this study, the behavior of individual copper hexacyanoferrate (CuHCF) microparticles is explored at both global and local scales combining scanning electrochemical microscopy (SECM), for electrochemical interrogation of a single, but global-scale microparticle, and optical microscopy monitoring to obtain a higher resolution dynamic image of the local electrochemistry within the same particle. Chronoamperometric experiments unveil a multistep oxidation/reduction process with varying dynamics. On the one hand, the global SECM analysis enables quantifying the charge transfer as well as its dynamics at the single microparticle level during the oxidation/reduction cycles by a redox mediator in solution. These conditions allow mimicking the charge storage processes in these particles when they are used as solid boosters in redox flow batteries. On the other hand, optical imaging with sub-particle resolution allows the mapping of local conversion rates and state-of-charge within individual CuHCF particles. These maps reveal that regions of different material loadings exhibit varying charge storage capacities and conversion rates. The findings highlight the significance of porous nanostructures and provide valuable insights for designing more efficient energy storage materials.
dc.identifier.eissn1613-6829
dc.identifier.jour-issn1613-6810
dc.identifier.olddbid210617
dc.identifier.oldhandle10024/193644
dc.identifier.urihttps://www.utupub.fi/handle/11111/53393
dc.identifier.urlhttps://onlinelibrary.wiley.com/doi/10.1002/smll.202309607
dc.identifier.urnURN:NBN:fi-fe2025082788697
dc.language.isoen
dc.okm.affiliatedauthorMoghaddam, Mahdi
dc.okm.affiliatedauthorJasielec, Jerzy
dc.okm.affiliatedauthorPeljo, Pekka
dc.okm.discipline216 Materials engineeringen_GB
dc.okm.discipline216 Materiaalitekniikkafi_FI
dc.okm.internationalcopublicationinternational co-publication
dc.okm.internationalityInternational publication
dc.okm.typeA1 ScientificArticle
dc.publisherWiley-VCH
dc.publisher.countryGermanyen_GB
dc.publisher.countrySaksafi_FI
dc.publisher.country-codeDE
dc.relation.articlenumber2309607
dc.relation.doi10.1002/smll.202309607
dc.relation.ispartofjournalSmall
dc.relation.issue36
dc.relation.volume20
dc.source.identifierhttps://www.utupub.fi/handle/10024/193644
dc.titleScanning Electrochemical Microscopy Meets Optical Microscopy: Probing the Local Paths of Charge Transfer Operando in Booster-Microparticles for Flow Batteries
dc.year.issued2024

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