Szczegóły publikacji

Opis bibliograficzny

Synthesis of nanoporous tin oxide layers by electrochemical anodization / Leszek Zaraska, Natalia Czopik, Michał Bobruk, Grzegorz D. Sulka, Justyna MECH, Marian Jaskuła // Electrochimica Acta : Journal of the International Society of Electrochemistry ; ISSN 0013-4686. — 2013 — vol. 104, s. 549–557. — Bibliogr. s. 557, Abstr. — ISSIS : 3rd International Symposium on Surface Imaging/Spectroscopy at the Solid/Liquid Interface : May 27–June 01, 2012, Krakow, Poland

Autorzy (6)

  • Zaraska Leszek
  • Czopik Natalia
  • Marczyński Michał
  • Sulka Grzegorz D.
  • AGHMech Justyna
  • Jaskuła Marian

Słowa kluczowe

anodizationtin oxidesporous structurenano pores

Dane bibliometryczne

ID BaDAP74651
Data dodania do BaDAP2013-08-09
Tekst źródłowyURL
DOI10.1016/j.electacta.2012.12.059
Rok publikacji2013
Typ publikacjireferat w czasopiśmie
Otwarty dostęptak
Czasopismo/seriaElectrochimica Acta

Abstract

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. (C) 2012 Elsevier Ltd. All rights reserved.

Publikacje, które mogą Cię zainteresować

artykuł
#98026Data dodania: 9.6.2016
Nanoporous tin oxides synthesized via electrochemical anodization in oxalic acid and their photoelectrochemical activity / Leszek Zaraska, Karolina Syrek, Katarzyna E. HNIDA, Michał BOBRUK, Aleksandra Krzysik, Tomasz ŁOJEWSKI, Marian Jaskuła, Grzegorz D. Sulka // Electrochimica Acta : Journal of the International Society of Electrochemistry ; ISSN 0013-4686. — 2016 — vol. 205, s. 273–280. — Bibliogr. s. 279–280, Abstr. — Publikacja dostępna online od: 2016-02-06
artykuł
#91548Data dodania: 8.9.2015
Growth and complex characterization of nanoporous oxide layers on metallic tin during one-step anodic oxidation in oxalic acid at room temperature / Leszek Zaraska, Michał BOBRUK, Marian Jaskuła, Grzegorz D. Sulka // Applied Surface Science ; ISSN 0169-4332. — Tytuł poprz.: Applications of Surface Science. — 2015 — vol. 351, s. 1034–1042. — Bibliogr. s. 1041–1042, Abstr.