dc.contributorNorth Dakota State University
dc.contributorUniversidade Estadual Paulista (Unesp)
dc.contributorUniversity of Ljubljana
dc.date.accessioned2019-10-06T15:19:07Z
dc.date.accessioned2022-12-19T18:24:30Z
dc.date.available2019-10-06T15:19:07Z
dc.date.available2022-12-19T18:24:30Z
dc.date.created2019-10-06T15:19:07Z
dc.date.issued2018-09-01
dc.identifierEuropean Physical Journal E, v. 41, n. 9, 2018.
dc.identifier1292-895X
dc.identifier1292-8941
dc.identifierhttp://hdl.handle.net/11449/186897
dc.identifier10.1140/epje/i2018-11723-7
dc.identifier2-s2.0-85053922139
dc.identifier.urihttps://repositorioslatinoamericanos.uchile.cl/handle/2250/5367935
dc.description.abstractAbstract.: Mean-field electrostatics is used to calculate the differential capacitance of an electric double layer formed at a planar electrode in a symmetric 1:1 electrolyte. Assuming the electrolyte is also ion-size symmetric, we derive analytic expressions for the differential capacitance valid up to fourth order in the surface charge density or surface potential. Our mean-field model accounts exclusively for electrostatic interactions but includes an arbitrary non-ideality in the mixing entropy of the mobile ions. The ensuing criterion for the camel-to-bell shape transition of the differential capacitance is analyzed using commonly used mixing models (one based on a lattice gas and the other based on the Carnahan-Starling equation of state) and compared with Monte Carlo simulations. We observe a reasonable agreement between all our mean-field models and the simulation data for the camel-to-bell shape transition. The absolute value of the differential capacitance for an uncharged (or weakly charged) electrode is, however, not reproduced by our mean-field approaches, not even upon introducing a Stern layer with a thickness equal of the ion radius. We show that, if a Stern layer is introduced, its thickness dependence on the ion size is non-monotonic or, depending on the salt concentration, even inversely proportional.
dc.languageeng
dc.relationEuropean Physical Journal E
dc.rightsAcesso aberto
dc.sourceScopus
dc.subjectSoft Matter: Interfacial Phenomena and Nanostructured Surfaces
dc.titleModeling the camel-to-bell shape transition of the differential capacitance using mean-field theory and Monte Carlo simulations
dc.typeArtículos de revistas


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