Please use this identifier to cite or link to this item: http://hdl.handle.net/1942/43163
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dc.contributor.authorAn, R-
dc.contributor.authorQuinones, LC-
dc.contributor.authorGys, N-
dc.contributor.authorDERVEAUX, Elien-
dc.contributor.authorBaert, K-
dc.contributor.authorHauffman, T-
dc.contributor.authorADRIAENSENS, Peter-
dc.contributor.authorBlockhuys, F-
dc.contributor.authorMeynen, V-
dc.date.accessioned2024-06-14T13:34:28Z-
dc.date.available2024-06-14T13:34:28Z-
dc.date.issued2023-
dc.date.submitted2024-06-14T13:28:20Z-
dc.identifier.citationAPPLIED SURFACE SCIENCE, 639 (Art N° 158179)-
dc.identifier.urihttp://hdl.handle.net/1942/43163-
dc.description.abstractA R T I C L E I N F O Keywords: TiO 2 surface modification (amino)alkylphosphonic acids Hydrocarbon chain length pH NH 2 /NH 3 + ratio A B S T R A C T Organically modified metal oxide surfaces are of interest in many applications since they combine the advantages of metal oxide supports (structural properties, chemical and mechanical stability) and organic functionalities (for specific surface interactions). Although surface modification with organophosphonic acids (PAs) with an alkyl or aminoalkyl functional group on TiO 2 has been investigated previously, knowledge of the synthesis-properties correlation (e.g. the binding mode of the PAs) is still lacking, especially for functional group-surface interactions. These are however important as they can influence functional group availability in applications such as (metal) sorption. In this work, the dependence of modification degree and phosphorus chemical environment on pH and chain length (C1 to C6) was investigated with TGA, ICP-OES, nitrogen/argon sorption, XPS, and solid-state 31 P NMR and DFT calculations. The TGA and the ICP-OES results showed a clear impact of pH on surface modification degrees, with a different response for modification with alkyl-and aminoalkylphosphonic acids, featuring a more rapid decrease in modification degrees from pH 2 upwards for the alkylphosphonic acids compared to the aminoalkylphosphonic acids. Moreover, a clear correlation can be found between the amino-alkyl chain length and the NH 2 /NH 3 + ratio. In addition, a positive correlation between the modification degree and the protonation degree of the amine group is observed for aminomethylphosphonic acid (AMPA) and 2-ami-noethylphosphonic acid (2AEPA) modified samples, while this is absent for longer alkyl chains. This is supported by DFT calculations that indicate that the most stable binding modes of AMPA and 2AEPA grafted on the anatase (1 0 1) surface include hydrogen bonds between NH 3 + and the surface oxygen atoms, in contrast, the most stable binding modes for 3-aminopropylphosphonic acid (3APPA), 4-aminobutylphosphonic acid (4ABPA), and 6-ami-nohexylphosphonic acid (6AHPA) grafted on the anatase (1 0 1) surface involve a Lewis acid-base interaction between NH 2 and a surface Ti site.-
dc.description.sponsorshipR. An is grateful for the support of the DOCPRO4 project of the University of Antwerp. N. Gys was supported by a VITO PhD scholarship. The Research Foundation Flanders (FWO Vlaanderen) and Hasselt University are acknowledged for the financial support of this research via the Hercules project AUHL/15/2-GOH3816N. The DFT calculations were performed using the Leibnitz HPC infrastructure at the CalcUA core facility of the University of Antwerp, a division of the Flemish Supercomputer Center (VSC), funded by the Hercules Foundation, the Flemish Government and the University of Antwerp. P. Adriaensens acknowledges the support of FWO project G.0121.17 N and V. Meynen acknowledges the support of FWO project K801621N and BOF sabbatical funding of UAntwerp. The XPS VPIII was funded by FWO mediumscale infrastructure project I006220N. The authors would like to gratefully acknowledge K. Leyssens, S. Defoss´e, W. Xu, and J. Wang for the nitrogen/argon sorption measurement (UAntwerp); K. Duyssens, F. Beutels and W. Brusten for the ICPOES measurements (VITO); K. Leyssens, S. Defoss´e, B. M. Ramesha, and K. Zhang for the TGA measurements (UAntwerp); A. Vansant and H. Lenaerts for the zeta potential measurement (VITO).-
dc.language.isoen-
dc.publisherELSEVIER-
dc.rights2023 Elsevier B.V. All rights reserved.-
dc.subject.otherTiO2 surface modification-
dc.subject.other(amino)alkylphosphonic acids-
dc.subject.otherHydrocarbon chain length-
dc.subject.otherpH-
dc.subject.otherNH2/NH3+ratio-
dc.titleInducing differences in modification degree and binding mode of organophosphonic acid grafted titania by changing pH and hydrocarbon chain length-
dc.typeJournal Contribution-
dc.identifier.volume639-
local.bibliographicCitation.jcatA1-
local.publisher.placeRADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS-
local.type.refereedRefereed-
local.type.specifiedArticle-
local.bibliographicCitation.artnr158179-
dc.identifier.doi10.1016/j.apsusc.2023.158179-
dc.identifier.isi001062277700001-
local.provider.typeWeb of Science-
local.uhasselt.internationalno-
item.fullcitationAn, R; Quinones, LC; Gys, N; DERVEAUX, Elien; Baert, K; Hauffman, T; ADRIAENSENS, Peter; Blockhuys, F & Meynen, V (2023) Inducing differences in modification degree and binding mode of organophosphonic acid grafted titania by changing pH and hydrocarbon chain length. In: APPLIED SURFACE SCIENCE, 639 (Art N° 158179).-
item.fulltextWith Fulltext-
item.contributorAn, R-
item.contributorQuinones, LC-
item.contributorGys, N-
item.contributorDERVEAUX, Elien-
item.contributorBaert, K-
item.contributorHauffman, T-
item.contributorADRIAENSENS, Peter-
item.contributorBlockhuys, F-
item.contributorMeynen, V-
item.accessRightsOpen Access-
crisitem.journal.issn0169-4332-
crisitem.journal.eissn1873-5584-
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