Synthesis of nanoporous tin oxide layers by electrochemical anodization

2013
journal article
article
61
dc.abstract.enNanoporous tin oxide layers were electrochemically synthesized by a voltage-controlled anodization of the metallic tin electrodeposited on the surface of Cu plate. As-prepared structures consist of number of stacked nanoporous layers separated from each other by thin gaps and the atomic ratio of Sn and O was found to be 1:1. An evolution of morphology of nanoporous tin oxide layer during anodization was investigated in detail. It was found that the oxide layer formed during the initial stage of anodizing is non-porous or exhibits a tiny pores, much smaller than those observed in the inner oxide layer. Under certain conditions (especially at higher anodizing potentials and temperatures), the nanopores in the outer layer widen with time of anodization. On the other hand, nanochannels diameter in the inner oxide layer remain almost constant. The effects of anodizing potential, temperature and electrolyte concentration on structural features of the oxide layer were deeply investigated. It was found that time required for a complete metallic tin oxidation shortens with increasing both anodizing potential and temperature. In addition, the increase in the maximum current density with increasing anodizing potential and temperature was observed. Moreover, the higher temperature, electrolyte concentration and potential applied during anodization, the larger nanochannels and thinner walls of the oxide layer are formed due to the more effective field-assisted dissolution of the oxide at the oxide/electrolyte interface and more vigorous oxygen evolution during anodizing.pl
dc.affiliationWydział Chemii : Zakład Chemii Fizycznej i Elektrochemiipl
dc.contributor.authorZaraska, Leszek - 214236 pl
dc.contributor.authorCzopik, Nataliapl
dc.contributor.authorBobruk, Michałpl
dc.contributor.authorSulka, Grzegorz - 132161 pl
dc.contributor.authorMech, Justynapl
dc.contributor.authorJaskuła, Marian - 128495 pl
dc.date.accessioned2015-01-16T14:14:14Z
dc.date.available2015-01-16T14:14:14Z
dc.date.issued2013pl
dc.description.admin[AB] Czopik, Natalia 50000141pl
dc.description.admin[AB] Bobruk, Michał 50000141pl
dc.description.physical549-557pl
dc.description.points35pl
dc.description.volume104pl
dc.identifier.doi10.1016/j.electacta.2012.12.059pl
dc.identifier.eissn1873-3859pl
dc.identifier.issn0013-4686pl
dc.identifier.urihttp://ruj.uj.edu.pl/xmlui/handle/item/2590
dc.languageengpl
dc.language.containerengpl
dc.rights.licenceBez licencji otwartego dostępu
dc.subject.entin oxidespl
dc.subject.enporous structurepl
dc.subject.ennanoporespl
dc.subject.enanodizationpl
dc.subtypeArticlepl
dc.titleSynthesis of nanoporous tin oxide layers by electrochemical anodizationpl
dc.title.journalElectrochimica Actapl
dc.typeJournalArticlepl
dspace.entity.typePublication
dc.abstract.enpl
Nanoporous tin oxide layers were electrochemically synthesized by a voltage-controlled anodization of the metallic tin electrodeposited on the surface of Cu plate. As-prepared structures consist of number of stacked nanoporous layers separated from each other by thin gaps and the atomic ratio of Sn and O was found to be 1:1. An evolution of morphology of nanoporous tin oxide layer during anodization was investigated in detail. It was found that the oxide layer formed during the initial stage of anodizing is non-porous or exhibits a tiny pores, much smaller than those observed in the inner oxide layer. Under certain conditions (especially at higher anodizing potentials and temperatures), the nanopores in the outer layer widen with time of anodization. On the other hand, nanochannels diameter in the inner oxide layer remain almost constant. The effects of anodizing potential, temperature and electrolyte concentration on structural features of the oxide layer were deeply investigated. It was found that time required for a complete metallic tin oxidation shortens with increasing both anodizing potential and temperature. In addition, the increase in the maximum current density with increasing anodizing potential and temperature was observed. Moreover, the higher temperature, electrolyte concentration and potential applied during anodization, the larger nanochannels and thinner walls of the oxide layer are formed due to the more effective field-assisted dissolution of the oxide at the oxide/electrolyte interface and more vigorous oxygen evolution during anodizing.
dc.affiliationpl
Wydział Chemii : Zakład Chemii Fizycznej i Elektrochemii
dc.contributor.authorpl
Zaraska, Leszek - 214236
dc.contributor.authorpl
Czopik, Natalia
dc.contributor.authorpl
Bobruk, Michał
dc.contributor.authorpl
Sulka, Grzegorz - 132161
dc.contributor.authorpl
Mech, Justyna
dc.contributor.authorpl
Jaskuła, Marian - 128495
dc.date.accessioned
2015-01-16T14:14:14Z
dc.date.available
2015-01-16T14:14:14Z
dc.date.issuedpl
2013
dc.description.adminpl
[AB] Czopik, Natalia 50000141
dc.description.adminpl
[AB] Bobruk, Michał 50000141
dc.description.physicalpl
549-557
dc.description.pointspl
35
dc.description.volumepl
104
dc.identifier.doipl
10.1016/j.electacta.2012.12.059
dc.identifier.eissnpl
1873-3859
dc.identifier.issnpl
0013-4686
dc.identifier.uri
http://ruj.uj.edu.pl/xmlui/handle/item/2590
dc.languagepl
eng
dc.language.containerpl
eng
dc.rights.licence
Bez licencji otwartego dostępu
dc.subject.enpl
tin oxides
dc.subject.enpl
porous structure
dc.subject.enpl
nanopores
dc.subject.enpl
anodization
dc.subtypepl
Article
dc.titlepl
Synthesis of nanoporous tin oxide layers by electrochemical anodization
dc.title.journalpl
Electrochimica Acta
dc.typepl
JournalArticle
dspace.entity.type
Publication
Affiliations

* The migration of download and view statistics prior to the date of April 8, 2024 is in progress.

No access

No Thumbnail Available