The Janus-nature of molecular CO2 in charge adjustment at wet surfaces

dc.contributor.authorVogel, Peter
dc.contributor.authorQaisrani, Muhammad Nawaz
dc.contributor.authorRasenat, Mattis
dc.contributor.authorLützenkirchen, Johannes
dc.contributor.authorSulpizi, Marialore
dc.contributor.authorBeyer, David
dc.contributor.authorHolm, Christian
dc.contributor.authorPalberg, Thomas
dc.date.accessioned2026-09-15T08:17:23Z
dc.date.issued2026
dc.description.abstractMolecular CO2 readily dissolves in aqueous electrolyte solutions and partially dissociating to form carbonic acid. The decharging effects of the dissociation products mediated by the ensuing pH-shift and the additional salinity are well established. However, the effects of dissolved molecular CO2 have not been studied systematically. We summarize recent and novel investigations on the role of CO2 regarding charge control at surfaces submersed in aqueous electrolytes. In our electrokinetic and conductometric measurements on representative surfaces, we took special care to control and monitor the electrolyte composition in situ. We discriminate the effects of molecular and dissociated CO2via control experiments using HCl. Depending on the surface under investigation and the charging mechanisms involved, we find that molecular CO2 assists either charging, de-charging and/or recharging. This contrasting charge regulating behaviour reveals the Janus nature of dissolved molecular CO2 with respect to charge control at wet surfaces. In our complementary molecular dynamics simulations, Q4 silica and 9% ionized Q3 silica surfaces are studied as hydrophobic/hydrophilic, respectively charged/uncharged, analogues, as well as uncharged Q3 silica and molecularly rough Isoleucin-coated quartz surfaces. In all cases, we find that the charge-neutral CO2 molecule physisorbs in a thin diffusive layer close to the surface, which leads to pronounced re-structuring of the electric double layer. Based on this result, we suggest to interpret the experimentally observed Janus nature of molecular CO2 in terms of a local decrease of the dielectric permittivity. This in turn leads to a local strengthening of electrostatic interactions dominating the double layer structure next to charged surfaces. Specifically, we propose that CO2 induces a dielectric charge regulation for weakly acidic surface groups, assists the incorporation of OH− into the H-bond network at smooth inert surfaces, and induces significant ion-correlations promoting co-ion binding. Overall, we demonstrate that molecular CO2 allows for a controlled charge-adjustment in opposing directions. We anticipate that our findings on the one hand provide substantial challenges for analytical or numerical modelling as well as for controlled experimental work, but on the other hand bear important practical implications for applications ranging from desalination to bio-membranes.en_GB
dc.identifier.doihttps://doi.org/10.25358/openscience-16437
dc.identifier.urihttps://openscience.ub.uni-mainz.de/handle/20.500.12030/16458
dc.language.isoeng
dc.rightsCC-BY-4.0
dc.rights.urihttps://creativecommons.org/licenses/by/4.0/
dc.subject.ddc530 Physikde_DE
dc.subject.ddc530 Physicsen_GB
dc.titleThe Janus-nature of molecular CO2 in charge adjustment at wet surfacesen_GB
dc.titleOverview : the Janus-nature of molecular CO2 in charge adjustment at wet surfacesen_GB
dc.typeZeitschriftenaufsatzde_DE
jgu.apc.netprice0,00
jgu.apc.price0,00
jgu.apc.taxrate0
jgu.apc.transformationcontractRSC
jgu.dfg.year2026
jgu.identifier.uuid9bc9eccf-a502-4538-934c-ac9bc51a1c0f
jgu.journal.issue21
jgu.journal.titleSoft matter
jgu.journal.volume22
jgu.nationalcurrency.eur0,00
jgu.organisation.departmentFB 08 Physik, Mathematik u. Informatikde_DE
jgu.organisation.nameJohannes Gutenberg-Universität Mainzde_DE
jgu.organisation.number7940
jgu.organisation.placeMainz
jgu.organisation.rorhttps://ror.org/023b0x485
jgu.pages.end3716
jgu.pages.start3692
jgu.publisher.doi10.1039/D6SM00222F
jgu.publisher.eissn1744-6848
jgu.publisher.nameRSC
jgu.publisher.placeCambridge
jgu.publisher.year2026
jgu.relation.IsVersionOf10.1039/D6SM00222F
jgu.rights.accessrightsopenAccessen_GB
jgu.subject.ddccode530
jgu.subject.dfgNaturwissenschaftende_DE
jgu.type.dinitypeArticleen_GB
jgu.type.resourceTexten_GB
jgu.type.versionPublished versionen_GB

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