Aug 2026· Macromolecular Symposia· 0 citations· 59 references
TL;DR
This work characterized composite resins using silicon dioxide filler as the main constituent, along with titanium dioxide (TiO 2 ) as supplementary additives, and showed that composite I has the highest degree of conversion and Vickers hardness values, while composite II shows the lowest shrinkage volume.
Abstract
Dental caries is a commonly occurring dental and oral disease that is treated with a therapeutic procedure employed in dental restoration. Dental composite resins are considered a suitable material for dental restorations owing to their aesthetic appeal, biocompatibility, and favorable physical and mechanical characteristics. The aim of this work is to characterize composite resins using silicon dioxide (SiO
2
) filler as the main constituent, along with titanium dioxide (TiO
2
) as supplementary additives. The composite resins are fabricated through the silanization of fillers, followed by mixing the resin matrix to generate a paste‐like substance. The obtained pastes are molded and exposed to a 20‐s blue light. Composite I consists of 55% SiO
2
, while composite II contains 50% SiO
2
and 5% TiO
2
. Several techniques are performed for characterization, including scanning electron microscopy (SEM), Fourier transform infrared (FTIR), Vickers hardness test, and polymerization shrinkage. The results showed that composite I has the highest degree of conversion and Vickers hardness values, while composite II shows the lowest shrinkage volume.
The synergistic incorporation of functionalized halloysite nanotubes and mesoporous silica significantly improved the overall performance of the dental composite resin, indicating its potential for restorative dental applications.
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