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dc.contributor.authorBrookbank, Paul A.en_GB
dc.date.accessioned2011-12-19T17:12:00Zen_GB
dc.date.accessioned2013-03-21T10:24:02Z
dc.date.issued2011-06-30en_GB
dc.description.abstractThe current generation of Glass Ionomer Cements (GICs) have many advantageous properties over other dental restorative materials but lack the compressive strength of these other materials. The aim of this project is to increase the compressive strength of conventional Glass Poly-Vinyl-Phosphonate cement by inclusion of reactive sub-micron filler particles. The setting characteristics, chemical reactivity and cement strength have been found using oscillating rheology, infrared spectrometry, nuclear magnetic spectrometry, transmission electron microscopy, potentiometer analysis, laser diffractometry and mechanical analysis. The addition of sub-micron filler particles in direct weight by weight replacement of aluminosilicate glass of a control material has increased the ultimate compressive strength of the new cement from 206MPa (control) to 250MPa after 365 days of aging. The strength of the new filler enhanced cements were comparable with the control material after 3 hours. The setting chemistry of the filler enhanced cements follows the same order as the control cement but at a decelerated rate. Theoretical modelling found that a large volume of sub-micron filler could fit into interstitial spacing in formed cement however the alteration of the aluminosilicate glass to polyelectrolyte ratio has been found to drastically alter the cement setting time. The use of cubic and polyhedral shaped filler particles as supposed to spherical particles may increase the cement strength further as greater packing densities are achieved. The formulation of a Glass Ionomer Cement with increased compressive strength may find use as a posterior restorative or as a better material for restoration of lesions and cavity liners.en_GB
dc.description.sponsorshipKemdent (Associated Dental Limited)en_GB
dc.description.sponsorshipGreat Western Research (GWR)en_GB
dc.identifier.urihttp://hdl.handle.net/10036/3336en_GB
dc.language.isoenen_GB
dc.publisherUniversity of Exeteren_GB
dc.rights.embargoreasonDo not want data entering the public domain before the opportunity to publish in peer reviewed journalsen_GB
dc.rightsThis thesis has been supplied on condition that anyone who consults it is understood to recognise that its copyright rests with its author and that no quotation from the thesis and no information derived from it may be published without proper acknowledgment. © Paul Alexander Brookbanken_GB
dc.subjectGlass Ionomeren_GB
dc.subjectGlass Poly-Vinyl-Phosphonateen_GB
dc.subjectCompressive Strengthen_GB
dc.subjectOscillating Rheologyen_GB
dc.subjectWilson Rheologyen_GB
dc.subjectInfrareden_GB
dc.subjectNuclear Magnetic Spectroscopyen_GB
dc.subjectReactive Filleren_GB
dc.subjectAcid-Base Cementen_GB
dc.subjectTransmission Electron Microscopyen_GB
dc.subjectGICen_GB
dc.subjectTEMen_GB
dc.subjectNMRen_GB
dc.titleGlass Poly-Vinyl-Phosphonate Cements with Reactive Aluminium Hydroxide Coated Sub-micron Anatase Filleren_GB
dc.typeThesis or dissertationen_GB
dc.date.available2012-07-01T04:00:06Zen_GB
dc.date.available2013-03-21T10:24:02Z
dc.contributor.advisorGhita, Oanaen_GB
dc.contributor.advisorBarbour, Micheleen_GB
dc.contributor.advisorEvans, Kenen_GB
dc.publisher.departmentCollege of Engineering, Mathematics and Physical Sciencesen_GB
dc.publisher.departmentEngineeringen_GB
dc.type.degreetitlePhD in Engineeringen_GB
dc.type.qualificationlevelDoctoralen_GB
dc.type.qualificationnamePhDen_GB


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