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dc.contributor.authorKankasit Tiyaprijaya-
dc.date.accessioned2026-09-09T03:22:21Z-
dc.date.available2026-09-09T03:22:21Z-
dc.date.issued2026-
dc.identifier.urihttp://nuir.lib.nu.ac.th/dspace/handle/123456789/7480-
dc.descriptionM.S. Thesis in Master of Science Program in Dentistryen_US
dc.description.abstractZirconia ceramics are favored in restorative dentistry for their superior mechanical strength, biocompatibility, and aesthetic properties. However, achieving a durable adhesive bond remains a significant clinical challenge because zirconia lacks a glassy phase and exhibits high chemical stability, which results in resistance to conventional acid etching and silanization. To overcome this, functional phosphate monomers such as 10- methacryloyloxydecyl dihydrogen phosphate (10-MDP) have been utilized to facilitate chemical bonding. 10-MDP promotes adhesion by forming chemical interactions between the zirconia surface and the resin-based cement. Despite its widespread use, the influence of varying 10-MDP concentrations on bond strength and the specific molecular coordination at the interface requires further investigation. This study therefore evaluated the effect of different 10-MDP concentrations on the shear bond strength between zirconia and composite resin while investigating the underlying chemical bonding mechanisms through spectroscopic analysis. Methods: Specimens were randomly divided into nine groups (n = 6): seven experimental groups treated with varying concentrations of experimental MDP solutions (2, 4, 6, 8, 10, 12, and 14% v/v in ethanol), a commercial MDP primer positive controlB (CMP; Z-Prime™ Plus), and a non-MDP treated primer negative control (NMP). Zirconia surfaces were treated with these MDP solutions prior to bonding with flowable composite resin. Shear bond strength was measured using a universal testing machine. Chemical coordination modes were analyzed using 31P Nuclear Magnetic Resonance (NMR) spectroscopy and Energy-Dispersive X-ray Spectroscopy (EDS) to correlate molecular configurations with SBS data. Results: Shear bond strength was significantly influenced by MDP concentration, increasing from 2% (7.1 ± 0.4 MPa) to a peak at 10% (11.3 ± 0.8 MPa), followed by a significant decline at 12% (7.6 ± 0.7 MPa) and 14% (7.7 ± 0.8 MPa).31P NMR analysis revealed that these variations correspond to five distinct bonding configurations (S1–S5). The superior performance of the 10% concentration was associated with the highest proportion of the S2 configuration, representing ionically bonded bidentate complexes. In contrast, the reduction in SBS at higher concentrations coincided with a decrease in S2 intensity and the emergence of S3 (bridging) and S4/S5 (phosphate oligomers). Conclusions: Bond strength is dictated by the distribution of MDP coordination modes rather than total presence. A 10% concentration is the ideal threshold for maximizing strong S2 ionic bonding. Exceeding this limit promotes non-productive phosphate multilayers that compromise interface stabilityen_US
dc.language.isoenen_US
dc.publisherNaresuan Universityen_US
dc.subject10-Methacryloyloxydecyl Dihydrogen Phosphateen_US
dc.subjectShear bond strengthen_US
dc.subjectZirconiaen_US
dc.subjectComposite resinen_US
dc.titleEFFECT OF DIFFERENCE 10-METHACRYLOYLOXYDECYL DIHYDROGEN PHOSPHATE CONCENTRATIONS ON THE SHEAR BOND STRENGTH BETWEEN ZIRCONIA AND COMPOSITE RESINen_US
dc.typeThesisen_US
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