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dc.contributor.authorAlves, Cristiana Filipa Almeidapor
dc.contributor.authorVelasco, Sebastian Calderonpor
dc.contributor.authorFerreira, P. J.por
dc.contributor.authorMarques, L.por
dc.contributor.authorCarvalho, S.por
dc.date.accessioned2021-02-26T12:11:39Z-
dc.date.available2021-02-26T12:11:39Z-
dc.date.issued2020-05-30-
dc.identifier.issn0169-4332por
dc.identifier.urihttps://hdl.handle.net/1822/70449-
dc.description.abstractTantalum oxide (Ta2O5) nanostructures exhibit outstanding electrical and optical properties, as well as, high chemical resistance and stability. These materials have great potential for biomedical, catalysis, semiconductors and energy applications due to their large surface area and high specific charge, when arranged in nanoporous or nanotubular morphologies. In order to obtain these structures, an anodization process, which is inexpensive, reproducible and easy to scale up, is used. Yet, depending on the anodization conditions, the formation of a nanoporous or nanotubular layer is difficult to stabilize during the anodization process. In this regard, anodized tantalum oxide nanostructures were produced to understand the effect of the anodization conditions, including electrolyte concentration, potential and time. The nanopores or nanotubes morphologies, their chemical composition and structure were investigated by FIB-SEM, double-corrected TEM-STEM and EDS. We found that it is necessary to have high acid concentrations (mixture of H2SO4 with HF) to be able to form nanoporous or nanotubular structures. Despite the capacity of HF to dissolve and create anodic oxide nanostructures, the amount of H2SO4 concentration in the mixture is very important, leading to a dimple morphology. Furthermore, the increase of the anodization potential/electrical field clearly leads to an increase in the dimples diameter.por
dc.description.sponsorshipThis research is sponsored by FEDER funds through the program COMPETE -Programa Operacional Factores de Competitividade and by the Portuguese Foundation for Science and Technology (FCT) in the framework of the Strategic Funding UIDB/04650/2020, and UID/EMS/00285/2020 and with a PhD fellowship SFRH/BD/98199/2013.The authors thank the financial support in the framework of HEALTHYDENT -POCI-01-0145-FEDER-030708 and PTDC/CTM-NAN/4242/2014 projects.This work was supported by FCT, through IDMEC, under LAETA, project UIDB/50022/2020.The authors would like to acknowledge that this project has received funding from the EU Framework Programme for Research and Innovation H2020, scheme COFUND -Co-funding of Regional, National and International Programmes, under Grant Agreement 713640.por
dc.language.isoengpor
dc.publisherElsevier 1por
dc.relationUIDB/04650/2020por
dc.relationUID/EMS/00285/2020por
dc.relationSFRH/BD/98199/2013por
dc.relationHEALTHYDENT -POCI-01-0145-FEDER-030708por
dc.relationPTDC/CTM-NAN/4242/2014por
dc.relationUIDB/50022/2020por
dc.rightsopenAccesspor
dc.subjectTantalumpor
dc.subjectAnodizationpor
dc.subjectNano-dimplespor
dc.subjectSTEMpor
dc.subjectEDSpor
dc.titlePassivation and dissolution mechanisms in ordered anodic tantalum oxide nanostructurespor
dc.typearticle-
dc.peerreviewedyespor
dc.relation.publisherversionhttps://www.sciencedirect.com/science/article/pii/S0169433220303317por
oaire.citationStartPage1por
oaire.citationEndPage10por
oaire.citationVolume513por
dc.date.updated2021-02-26T11:33:27Z-
dc.identifier.doi10.1016/j.apsusc.2020.145575por
dc.subject.wosScience & Technology-
sdum.export.identifier8970-
sdum.journalApplied Surface Sciencepor
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