dc.creatorNascimento, Marcio Luis Ferreira
dc.creatorWatanabe, Shigueo
dc.creatorNascimento, Marcio Luis Ferreira
dc.creatorWatanabe, Shigueo
dc.date.accessioned2010-11-10T19:56:40Z
dc.date.available2010-11-10T19:56:40Z
dc.date.created2010-11-10T19:56:40Z
dc.date.issued2007
dc.identifier02540584
dc.identifierhttp://www.repositorio.ufba.br/ri/handle/ufba/582
dc.identifierMaterials Chemistry and Physics, v. 105, p. 308-314
dc.description.abstractFollowing recent finding it is shown that using conductivity and molar volume in binary potassium silicate glasses there is a common cubic scaling relation between them due to increase in alkali content. Emphasis is placed on the application of Anderson-Stuart model to describe the variation of activation enthalpy for conduction EA with potassium concentration. In this analysis were considered experimental parameters, like shear modulus G and relative dielectric permittivity e, in wide composition range (between 1.7 to 40 K2O mol%). The effects of G, e and free volume are taken into account. The drastic drop in conductivity up to 17 orders of magnitude for so many ion-conducting binary alkali silicate glasses is then mainly caused by the structure and the ion content. In particular, it is suggested that the glass network expansion, which is related to the available free volume, is a parameter that could explain the increase in ionic conductivity for this binary system.
dc.languageen_US
dc.subjectVidro
dc.subjectCondutividade
dc.subjectAnderson-Stuart
dc.subjectCondução Ionica
dc.subjectModelo
dc.titleTest of the Anderson Stuart model and correlation between free volume and the `universal conductivity in potassium silicate glasses
dc.typeArtigo de Periódico
dc.typeArtigo de Periódico


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