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Molecular dynamics study of nanoconfined TIP4P/2005 water: how confinement and temperature affect diffusion and viscosity

dc.contributor.authorZaragoza, A.
dc.contributor.authorGonzález, Miguel A.
dc.contributor.authorJoly, L.
dc.contributor.authorLópez-Montero, Iván
dc.contributor.authorCanales Mayordomo, María Ángeles
dc.contributor.authorBenavides, A. L.
dc.contributor.authorValeriani, Chantal
dc.date.accessioned2023-06-17T12:29:58Z
dc.date.available2023-06-17T12:29:58Z
dc.date.issued2019
dc.descriptionThe research leading to these results has received funding from the European Research Council under the European Union's Seventh Framework Programme (ERC grant agreement n° 338133)
dc.description.abstractIn the past few decades great effort has been devoted to the study of water confined in hydrophobic geometries at the nanoscale (tubes and slit pores) due to the multiple technological applications of such systems, ranging from drug delivery to water desalination devices. To our knowledge, neither numerical/ theoretical nor experimental approaches have so far reached a consensual understanding of structural and transport properties of water under these conditions. In this work, we present molecular dynamics simulations of TIP4P/2005 water under different nanoconfinements (slit pores or nanotubes, with two degrees of hydrophobicity) within a wide temperature range. It has been found that water is more structured near the less hydrophobic walls, independently of the confining geometries. Meanwhile, we observe an enhanced diffusion coefficient of water in both hydrophobic nanotubes. Finally, we propose a confined Stokes–Einstein relation to obtain the viscosity from diffusivity, whose result strongly differs from the Green–Kubo expression that has been used in previous works. While viscosity computed with the Green–Kubo formula (applied for anisotropic and confined systems) strongly differs from that of the bulk, viscosity computed with the confined Stokes–Einstein relation is not so much affected by the confinement, independently of its geometry. We discuss the shortcomings of both approaches, which could explain this discrepancy.
dc.description.departmentDepto. de Química Física
dc.description.facultyFac. de Ciencias Químicas
dc.description.refereedTRUE
dc.description.sponsorshipUnión Europea. FP7
dc.description.sponsorshipMinisterio de Economía y Competitividad (MINECO)
dc.description.sponsorshipMinisterio de Ciencia e Innovación (MICINN)
dc.description.sponsorshipUniversidad Complutense de Madrid/Banco de Santander
dc.description.sponsorshipCONACYT (México)
dc.description.statuspub
dc.eprint.idhttps://eprints.ucm.es/id/eprint/60122
dc.identifier.doi10.1039/C9CP02485A
dc.identifier.issn1463-9076
dc.identifier.officialurlhttps://doi.org/10.1039/C9CP02485A
dc.identifier.urihttps://hdl.handle.net/20.500.14352/12299
dc.issue.number25
dc.journal.titlePhysical Chemistry Chemical Physics
dc.language.isoeng
dc.page.final13667
dc.page.initial13653
dc.publisherRoyal Society of Chemistry
dc.relation.projectIDMITOCHON (338133)
dc.relation.projectIDFIS2016-78847-P
dc.relation.projectID(IJCI-2016- 27497)
dc.relation.projectIDPR26/16-10B-2
dc.relation.projectID(Project A1-S-30736)
dc.rights.accessRightsopen access
dc.subject.ucmQuímica física (Física)
dc.subject.unesco2210 Química Física
dc.titleMolecular dynamics study of nanoconfined TIP4P/2005 water: how confinement and temperature affect diffusion and viscosity
dc.typejournal article
dc.volume.number21
dspace.entity.typePublication
relation.isAuthorOfPublication6cef3cac-1f82-4cba-aaa4-4c246752b0ba
relation.isAuthorOfPublication70e93697-1ddb-4497-977d-73fcf46c4837
relation.isAuthorOfPublication.latestForDiscovery70e93697-1ddb-4497-977d-73fcf46c4837

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