Preparation of low shrinkage stress dental composite with synthesized dimethacrylate oligomers.

Shuzhen Luo, Fang Liu, Jingwei He

Journal: Journal of the mechanical behavior of biomedical materials 2020;94():222-228

PMID: 30921729

Abstract

Two dimethacrylate oligomers named polypropylenglycol bis(2-hydroxy-3-methoxypropyl) dimethacrylates (380PPMA and 640PPMA) with different molecular weight were synthesized through ring opening addition reaction between epoxy terminated oligomers PPDE and methacrylic acid, and their structures were confirmed by FT-IR and H-NMR spectra. The PPMAs were used to replace TEGDMA partially in Bis-GMA/TEGDMA (50/50, wt./wt.) with the aim to reducing volumetric shrinkage and shrinkage stress of dental resin composites. Dental resin composite without PPMAs was used as control. Double bond conversion (DC), volumetric shrinkage (VS), shrinkage stress, water sorption (WS) and solubility (SL), flexural strength (FS) and modulus (FM) of experimental dental resin composites were investigated. Dynamic mechanical analysis (DMA) was used to evaluate the glass transition temperature (Tg), heterogeneity, and crosslink density (υ). The results showed that dental resin composites contained 640PPMA had slower polymerization rate. Only dental resin composites with 20 wt% of 640PPMA in resin matrix had lower VS than control group (p < 0.05). All of PPMAs containing composites had lower shrinkage stress than control group (p < 0.05). Before water immersion, all of experimental dental resin composites had the same FS and FM (p > 0.05), while after water immersion, FM of dental resin composites with PPMAs became lower than control (p < 0.05). Higher WS and SL were observed in composites with 640PPMA (p < 0.05). Incorporation of PPMAs into dental resin composites could decrease Tg and crosslink density (p < 0.05), but more homogeneous materials could be obtained (p < 0.05). Therefore, PPMAs could be used to reduce volumetric shrinkage and shrinkage stress of dental resin composites, but further studies concerned biocompatibility and service life should be taken because of the higher WS and SL.

Copyright © 2019 Elsevier Ltd. All rights reserved.

Address: School of Materials Science and Engineering, South China University of Technology, 381 Wushan Road, Tianhe District, Guangzhou 510641, China; Key lab of Guangdong Province for High Property and Functional Macromolecular Materials, South China University of Technology, Gunagzhou 510641, China.; School of Materials Science and Engineering, South China University of Technology, 381 Wushan Road, Tianhe District, Guangzhou 510641, China; Key lab of Guangdong Province for High Property and Functional Macromolecular Materials, South China University of Technology, Gunagzhou 510641, China. Electronic address: [email protected].

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