Please use this identifier to cite or link to this item: http://hdl.handle.net/1942/14596
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dc.contributor.authorPEYS, Nick-
dc.contributor.authorLing, Yun-
dc.contributor.authorDEWULF, Daan-
dc.contributor.authorGIELIS, Sven-
dc.contributor.authorDE DOBBELAERE, Christopher-
dc.contributor.authorCuypers, Daniel-
dc.contributor.authorADRIAENSENS, Peter-
dc.contributor.authorVAN DOORSLAER, Sabine-
dc.contributor.authorDe Gendt, Stefan-
dc.contributor.authorHARDY, An-
dc.contributor.authorVAN BAEL, Marlies-
dc.date.accessioned2013-02-21T09:16:07Z-
dc.date.available2013-02-21T09:16:07Z-
dc.date.issued2013-
dc.identifier.citationDALTON TRANSACTIONS, 42 (4), p. 959-968-
dc.identifier.issn1477-9226-
dc.identifier.urihttp://hdl.handle.net/1942/14596-
dc.description.abstractAn aqueous deposition process for V6O13 films is developed whereby the vanadium oxidation state is continuously controlled throughout the entire process. In the precursor stage, a controlled wet chemical reduction of the vanadium(V) source with oxalic acid is achieved and monitored by (51)Vanadium Nuclear Magnetic Resonance (V-51-NMR) and Ultraviolet-Visible (UV-Vis) spectroscopy. The resulting vanadium(IV) species in the aqueous solution are identified as mononuclear citrato-oxovanadate(IV) complexes by Electron Paramagnetic Resonance (EPR) and Fourier Transform Infra-Red (FTIR) spectroscopy. This precursor is successfully employed for the deposition of uniform, thin films. The optimal deposition and annealing conditions for the formation of crystalline V6O13, including the control of the vanadium oxidation state, are determined through an elaborate study of processing temperature and O-2 partial pressure. To ensure a sub 100 nm adjustable film thickness, a non-oxidative intermediate thermal treatment is carried out at the end of each deposition cycle, allowing maximal precursor decomposition while still avoiding V(IV) oxidation. The resulting surface hydrophilicity, indispensable for the homogeneous deposition of the next layer, is explained by an increased surface roughness and the increased availability of surface vanadyl groups. Crystalline V6O13 with a preferential (002) orientation is obtained after a post deposition annealing in a 0.1% O-2 ambient for thin films with a thickness of 20 nm.-
dc.description.sponsorshipNick Peys is a doctoral fellow of the Research Foundation Flanders (FWO-Vlaanderen). Y. Ling thanks the University of Antwerp (UA-GOA) for PhD funding. D. Dewulf is funded by a PhD grant of the Institute for the Promotion of Innovation through Science and Technology in Flanders (IWT-Vlaanderen). Christopher De Dobbelaere and An Hardy are postdoctoral research fellows of the Research Foundation Flanders (FWO-Vlaanderen). The Hercules Foundation is acknowledged for the financial support for the Jobin Yvon micro-Raman (T64000) tool and the Bruker Elexsys E500 EPR spectrometer upgrade. Part of this research is funded by the FWO research project G054312.-
dc.language.isoen-
dc.publisherROYAL SOC CHEMISTRY-
dc.subject.otherChemistry, Inorganic & Nuclear-
dc.titleV6O13 films by control of the oxidation state from aqueous precursor to crystalline phase-
dc.typeJournal Contribution-
dc.identifier.epage968-
dc.identifier.issue4-
dc.identifier.spage959-
dc.identifier.volume42-
local.format.pages10-
local.bibliographicCitation.jcatA1-
dc.description.notesVan Bael, MK (reprint author) [Peys, Nick; Dewulf, Daan; Gielis, Sven; De Dobbelaere, Christopher; Hardy, An; Van Bael, Marlies K.] Hasselt Univ, Inst Mat Res Inorgan & Phys Chem, Diepenbeek, Belgium. [Peys, Nick; Cuypers, Daniel; De Gendt, Stefan] IMEC VZW, Heverlee, Belgium. [Ling, Yun; Van Doorslaer, Sabine] Univ Antwerp, SIBAC Lab, Dept Phys, B-2020 Antwerp, Belgium. [Dewulf, Daan; Gielis, Sven; Hardy, An; Van Bael, Marlies K.] IMEC VZW, Div IMOMEC, Diepenbeek, Belgium. [Cuypers, Daniel; De Gendt, Stefan] KULeuven, Dept Chem, Heverlee, Belgium. [Adriaensens, Peter] Hasselt Univ, Inst Mat Res Appl & Analyt Chem, Diepenbeek, Belgium. nick.peys@uhasselt.be; marlies.vanbael@uhasselt.be-
local.publisher.placeCAMBRIDGE-
local.type.refereedRefereed-
local.type.specifiedArticle-
dc.identifier.doi10.1039/c2dt31857a-
dc.identifier.isi000312659200019-
item.contributorPEYS, Nick-
item.contributorLing, Yun-
item.contributorDEWULF, Daan-
item.contributorGIELIS, Sven-
item.contributorDE DOBBELAERE, Christopher-
item.contributorCuypers, Daniel-
item.contributorADRIAENSENS, Peter-
item.contributorVAN DOORSLAER, Sabine-
item.contributorDe Gendt, Stefan-
item.contributorHARDY, An-
item.contributorVAN BAEL, Marlies-
item.validationecoom 2014-
item.fullcitationPEYS, Nick; Ling, Yun; DEWULF, Daan; GIELIS, Sven; DE DOBBELAERE, Christopher; Cuypers, Daniel; ADRIAENSENS, Peter; VAN DOORSLAER, Sabine; De Gendt, Stefan; HARDY, An & VAN BAEL, Marlies (2013) V6O13 films by control of the oxidation state from aqueous precursor to crystalline phase. In: DALTON TRANSACTIONS, 42 (4), p. 959-968.-
item.accessRightsRestricted Access-
item.fulltextWith Fulltext-
crisitem.journal.issn1477-9226-
crisitem.journal.eissn1477-9234-
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