Microsolvation of NO3 -: Structural exploration and bonding analysis

dc.contributor.affiliationDepartamento de Ciencias Básicas, Universidad de Medellín, Antioquia, Colombiaspa
dc.contributor.affiliationInstituto de Química, Universidad de Antioquia UdeA, Calle 70 No. 52-21, Medellín, Colombiaspa
dc.contributor.affiliationDepartamento de Física Aplicada, Centro de Investigación y de Estudios Avanzados, Unidad Mérida, Km 6 Antigua Carretera a Progreso. Apdo. Postal 73, Cordemex, Mérida Yuc., Mexicospa
dc.contributor.authorFlórez E.
dc.contributor.authorAcelas N.
dc.contributor.authorIbargüen C.
dc.contributor.authorMondal S.
dc.contributor.authorCabellos J.L.
dc.contributor.authorMerino G.
dc.contributor.authorRestrepo A.
dc.date.accessioned2016-10-28T16:44:55Z
dc.date.available2016-10-28T16:44:55Z
dc.date.issued2016
dc.description.abstractExploration of the potential energy surfaces (PESs) of various microsolvated species associated with the microsolvation of the nitrate anion using density functional theory methods uncovers a rich and complex structural diversity previously unnoticed in the scientific literature for the [NO3(H2O)n]−, n = 1–6 clusters. Two types of interactions are at play in stabilizing the clusters: traditional water to water and charge assisted nitrate to water hydrogen bonds (HBs). The formal negative charge on oxygen atoms in nitrate strengthens hydrogen bonding among water molecules. There is outstanding agreement between available experimental data (sequential hydration enthalpies, IR spectra, and vertical detachment energies) and the corresponding expectation values obtained from our structures. Each PES is heavily populated in the vicinities of the corresponding global minimum with multiple structures contributing to the experimental properties. The last two statements, in conjunction with results from other works (see for example Phys. Chem. Chem. Phys. 2014, 16, 19241) place a warning on the generalized and naive practice of assigning experimental observations to individual structures.eng
dc.identifier.doi10.1039/c6ra15059d
dc.identifier.issn20462069
dc.identifier.urihttp://hdl.handle.net/11407/2870
dc.language.isoeng
dc.publisherRoyal Society of Chemistryspa
dc.relation.ispartofRSC Advancesspa
dc.relation.isversionofhttp://pubs.rsc.org/en/Content/ArticleLanding/2016/RA/C6RA15059D#!divAbstract
dc.rights.accessrightsinfo:eu-repo/semantics/restrictedAccess
dc.sourceScopusspa
dc.subject.proposalChemical bondseng
dc.subject.proposalDensity functional theoryeng
dc.subject.proposalMoleculeseng
dc.subject.proposalNitrateseng
dc.subject.proposalPotential energyeng
dc.subject.proposalQuantum chemistryeng
dc.subject.proposalDensity functional theory methodseng
dc.subject.proposalExpectation valueseng
dc.subject.proposalIndividual structureseng
dc.subject.proposalMultiple structureseng
dc.subject.proposalScientific literatureeng
dc.subject.proposalSequential hydrationseng
dc.subject.proposalStructural diversityeng
dc.subject.proposalVertical detachment energieseng
dc.subject.proposalHydrogen bondseng
dc.titleMicrosolvation of NO3 -: Structural exploration and bonding analysisspa
dc.typeArticle
dc.type.driverinfo:eu-repo/semantics/article

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