疏水性牙科胶粘剂的协同增强:自主强化、聚合动力学和抗水解性。

IF 1.5 Q3 DENTISTRY, ORAL SURGERY & MEDICINE
Frontiers in dental medicine Pub Date : 2024-01-01 Epub Date: 2024-04-26 DOI:10.3389/fdmed.2024.1373853
Burak Korkmaz, Erhan Demirel, Qiang Ye, Anil Misra, Candan Tamerler, Paulette Spencer
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引用次数: 0

摘要

复合修复失败的主要原因是反复出现的边缘衰减。复合材料与牙齿之间的边缘最初由低粘度粘合剂密封,但化学、物理和机械应力协同作用,同时降解粘合剂,破坏界面密封,为细菌繁殖提供理想的环境。我们集团一直在开发具有改进化学和机械特性的自增强粘合剂。本文报道了一种自增强粘合剂配方,通过自由基聚合、溶胶-凝胶反应和疏水性的协同刺激,提供聚合物网络的内在增强,从而抵抗水解介导的降解。疏水树脂配方(NE1)采用HEMA/BisGMA 28/55w/w和15wt % MPS配制。对照组(NC1)含有HEMA/BisGMA 28/55 w/w和15 wt% MES。研究了树脂样品的聚合动力学、吸水性能、渗滤液性能和动态力学性能。NC1和NE1样品具有相似的聚合动力学、转化率和吸水性。相比之下,NC1显示出更高水平的HEMA和BisGMA渗滤液,表明在乙醇中降解更快。第3天,NC1的累积HEMA渗滤液是NE1的10倍(p < 0.05)。在干湿条件下分别在37°C和70°C下测量动态力学性能。在干燥条件下,NC1和NE1的储存模量具有可比性,NC1的玻璃化转变温度(T g)比NE1低(p < 0.001)。在潮湿条件下,NC1的存储模量低于NE1,在70℃时,存储模量相差3倍。在此温度和潮湿条件下,NC1的存储模量在统计学上显著低于NE1 (p < 0.001)。结果表明,在潮湿环境下,NE1具有较低的链迁移率、较高的交联密度和较多的氢键。新配方的甲基丙烯酸酯基粘合剂利用自由基聚合、溶胶-凝胶反应和疏水性,在高温潮湿环境下提供增强的机械性能,并在剧烈老化条件下提供水解稳定性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Synergistic enhancement of hydrophobic dental adhesives: autonomous strengthening, polymerization kinetics, and hydrolytic resistance.

The leading cause of composite restoration failure is recurrent marginal decay. The margin between the composite and tooth is initially sealed by a low-viscosity adhesive, but chemical, physical, and mechanical stresses work synergistically and simultaneously to degrade the adhesive, destroying the interfacial seal and providing an ideal environment for bacteria to proliferate. Our group has been developing self-strengthening adhesives with improved chemical and mechanical characteristics. This paper reports a self-strengthening adhesive formulation that resists hydrolysis-mediated degradation by providing intrinsic reinforcement of the polymer network through synergistic stimulation of free-radical polymerization, sol-gel reaction, and hydrophobicity. Hydrophobic resin formulation (NE1) was developed using HEMA/BisGMA 28/55w/w and 15 wt% MPS. Control (NC1) contained HEMA/BisGMA 28/55 w/w and 15 wt% MES. The polymerization kinetics, water sorption, leachates, and dynamic mechanical properties of the resin samples were investigated. The NC1 and NE1 samples showed comparable polymerization kinetics, degree of conversion and water sorption. In contrast, NC1 showed significantly higher levels of HEMA and BisGMA leachate, indicating faster degradation in ethanol. At day 3, cumulative HEMA leachate for NC1 was tenfold greater than NE1 (p < 0.05). Dynamic mechanical properties were measured at 37 and 70°C in both dry and wet conditions. Under dry conditions, the storage moduli of NC1 and NE1 were comparable and the glass transition temperature (T g) of NC1 was statistically significant lower (p < 0.001) than NE1. Under wet conditions, the storage modulus of NC1 was lower than NE1 and at 70°C there is a threefold difference in storage modulus. At this temperature and under wet conditions, the storage modulus of NC1 is statistically significantly lower (p < 0.001) than NE1. The results indicated that in the wet environment, NE1 provided lower chain mobility, higher crosslink density, and more hydrogen bonds. The newly formulated methacrylate-based adhesive capitalizes on free-radical polymerization, sol-gel reactions, and hydrophobicity to provide enhanced mechanical properties at elevated temperatures in wet environments and hydrolytic stability under aggressive aging conditions.

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