Ciencias,UNAM

Temperature dependence of the excess molar heat capacities for alcohol-alkane mixtures. Experimental testing of the predictions from a two-state model

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dc.contributor.author Cerdeirina, CA
dc.contributor.author Tovar, CA
dc.contributor.author Carballo, E
dc.contributor.author Romani, L
dc.contributor.author Delgado, MD
dc.contributor.author Torres, LA
dc.contributor.author Costas, M
dc.date.accessioned 2011-01-22T10:26:57Z
dc.date.available 2011-01-22T10:26:57Z
dc.date.issued 2002
dc.identifier.issn 1520-6106
dc.identifier.uri http://hdl.handle.net/11154/1902
dc.description.abstract A simple association model for alcohol-alkane mixtures, based on the idea that only two energy states are accessible to alcohol molecules in the pure and in the solution states, predicts complex temperature and alcohol concentration dependences of the excess molar heat capacity, C-p.m(E). These predictions are tested through the accurate measurement of pure component and solution heat capacities in the 278.15-338.15 K temperature interval. These measurements were performed at low, equimolar, and high alcohol concentrations for a linear alcohol (1-butanol) and a branched alcohol (3-methyl-3-pentanol) mixed with n-decane and with toluene. The qualitative predictions from the two-state model are corroborated by the data. According to this model, the very different C-p.m(E) behaviors found for the different systems arise simply through the change in hydrogen bonding Gibbs energy occurring on moving from the linear to the branched alcohol and in going from the inert n-decane to the aromatic toluene. en_US
dc.language.iso en en_US
dc.title Temperature dependence of the excess molar heat capacities for alcohol-alkane mixtures. Experimental testing of the predictions from a two-state model en_US
dc.type Article en_US
dc.identifier.idprometeo 2258
dc.identifier.doi 10.1021/jp0123278
dc.source.novolpages 106(1):185-191
dc.subject.wos Chemistry, Physical
dc.description.index WoS: SCI, SSCI o AHCI
dc.relation.journal Journal of Physical Chemistry B

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