Please use this identifier to cite or link to this item: http://hdl.handle.net/1942/21316
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dc.contributor.authorVAN DEN HAM, Jonathan-
dc.contributor.authorELEN, Ken-
dc.contributor.authorKokal, I.-
dc.contributor.authorYağci, B.-
dc.contributor.authorPEYS, Nick-
dc.contributor.authorBONNEUX, Gilles-
dc.contributor.authorULU, Fulya-
dc.contributor.authorMARCHAL, Wouter-
dc.contributor.authorVAN BAEL, Marlies-
dc.contributor.authorHARDY, An-
dc.date.accessioned2016-05-30T12:39:47Z-
dc.date.available2016-05-30T12:39:47Z-
dc.date.issued2016-
dc.identifier.citationRSC Advances (6), p. 51747-51756-
dc.identifier.issn2046-2069-
dc.identifier.urihttp://hdl.handle.net/1942/21316-
dc.description.abstractUsing a colloidal suspension, tungsten oxide thin films (150 nm) have been prepared via ultrasonic spray deposition using two different current collectors, namely TiN and Pt. First, the precursor chemistry was studied, revealing that the tungsten present is reduced due to the formation of chlorine gas. Due to a dehydrogenation 1,1-diethoxyethane (DEE) and hydrogen chloride (HCl) evolve from the precursor, reducing the chloride content of the precursor. The thin films were annealed at 400 and 500 °C, yielding tetragonal tungsten oxide without the presence of chlorides. Electrochemical analysis indicated that the TiN current collector has a pronounced positive effect on cycling behavior of the WO3 thin film. A higher annealing temperature yields an improved performance, but annealing at temperatures as low as 400 °C also yielded electrochemically active WO3. The current study presents a versatile method to produce electrochemically active tungsten oxide thin films with a high volumetric capacity (640 mA h cm−3) at relatively low temperature to be applied in all-solid-state Li-ion batteries.-
dc.description.sponsorshipThe authors thank Jan Czech for performing the headspace GC-MS measurements, Giulia Maino for the helpful discussion regarding the electrochemical measurements and Prof. Jan D'Haen for discussing XRD data. Imec (Leuven, Belgium) and the CoCooN research group Ghent University (Belgium) are acknowledged for providing substrates. The Energy Materials and Devices group of Eindhoven University of Technology is acknowledged for assistance regarding the electrochemical measurements. This study was partially supported by the IWT SOS Lion project.-
dc.language.isoen-
dc.rightsThis journal is © The Royal Society of Chemistry 2016-
dc.titleFrom liquid to thin film: colloidal suspensions for tungsten oxide as an electrode material for Li-ion batteries-
dc.typeJournal Contribution-
dc.identifier.epage51756-
dc.identifier.issue6-
dc.identifier.spage51747-
local.bibliographicCitation.jcatA1-
dc.description.notesVan den Ham, EJ (reprint author), Hasselt Univ, Inst Mat Res Inorgan & Phys Chem, Martelarenlaan 42, B-3500 Hasselt, Belgium. jonathan.vandenham@uhasselt.be-
local.type.refereedRefereed-
local.type.specifiedArticle-
dc.identifier.doi10.1039/C6RA08769H-
dc.identifier.isi000382079800034-
item.fulltextWith Fulltext-
item.contributorVAN DEN HAM, Jonathan-
item.contributorELEN, Ken-
item.contributorKokal, I.-
item.contributorYağci, B.-
item.contributorPEYS, Nick-
item.contributorBONNEUX, Gilles-
item.contributorULU, Fulya-
item.contributorMARCHAL, Wouter-
item.contributorVAN BAEL, Marlies-
item.contributorHARDY, An-
item.fullcitationVAN DEN HAM, Jonathan; ELEN, Ken; Kokal, I.; Yağci, B.; PEYS, Nick; BONNEUX, Gilles; ULU, Fulya; MARCHAL, Wouter; VAN BAEL, Marlies & HARDY, An (2016) From liquid to thin film: colloidal suspensions for tungsten oxide as an electrode material for Li-ion batteries. In: RSC Advances (6), p. 51747-51756.-
item.accessRightsOpen Access-
item.validationecoom 2017-
crisitem.journal.eissn2046-2069-
Appears in Collections:Research publications
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