Department of Restorative Dentistry, Dental School of the Ludwig-Maximilians-University, Goethestr 70, 80336 Munich, Germany.
Dent Mater. 2011 Apr;27(4):348-55. doi: 10.1016/j.dental.2010.11.014. Epub 2010 Dec 30.
Monomer development for a reduced shrinkage of composite materials still challenges the modern research. The purpose of this study was to analyse the shrinkage behavior of an innovative composite material for dental restorations based on a resin system that is claimed to control polymerization kinetics having incorporated a photoactive group within the resin.
Shrinkage stress development within the first 300s after photoinitiation, gel point as well as micro-mechanical properties (Vickers hardness HV, modulus of elasticity E, creep Cr and elastic-plastic indentation work W(e)/W(tot)) were evaluated (n = 10). The experimental flowable resin-based composite (RBC) was measured in comparison to regular methacrylate-based micro- (Esthet X Flow) and nano-hybrid flowable RBCs (Filtek Supreme Plus Flow). Additionally, the high viscosity counterparts of the two regular flowable methacryate-based composites (Esthet X Plus and Filtek Supreme Plus) as well as a low shrinkage silorane-based micro-hybrid composite (Filtek Silorane) were considered. The curing time was 20s (LED unit Freelight2, 3M-ESPE, 1226 mW/cm(2)).
The experimental material achieved the significantly lowest contraction stress (1.1 ± .01 MPa) followed by the silorane-based composite (3.6 ± .03 MPa), whereas the highest stress values were induced in the regular methacrylate-based flowable composites EsthetX Flow (5.3 ± .3 MPa) and Filtek Supreme Flow (6.5 ± .3 MPa). In view of gel point, the best values were obtained for the experimental flowable composite (3.1 ± .1s) and Filtek Silorane (3.2 ± .3s), which did not differ significant from each others, whereas EsthetX Plus and Filtek Supreme Plus did also not differ significantly, inducing the shortest gel point. The experimental flowable material achieved also the lowest shrinkage-rate (maximum at 0.1 MPa/s). For all analysed materials, no significant difference in the micro-mechanical properties between top and bottom were found when measured on 2mm thick increments 24h after polymerization. The categories of flowable materials performed in the measured micro-mechanical properties significantly inferior when compared to the hybrid-composites, showing lower HV and E and predominantly higher creep and plastic deformation. Within the flowable RBCs, the experimental material achieved the lowest Vickers hardness, the highest modulus of elasticity, the highest creep and showed the significantly lowest elastic deformation.
The experimental flowable composite revealed the lowest shrinkage stress and shrinkage-rate values in comparison to regular methacrylate composites but intermediate micro-mechanical properties. Being at the same time more rigid (higher modulus of elasticity) and more plastic (low W(e)/W(tot) and high creep values) as the regular flowable materials, its effect on interfacial stress build-up cannot be easily predicted.
单体的发展对于降低复合材料的收缩仍然是现代研究的挑战。本研究的目的是分析一种新型牙科修复复合材料的收缩行为,该复合材料基于据称能控制聚合动力学的树脂系统,其中在树脂中加入了一个光活性基团。
在光引发后的最初 300 秒内,评估收缩应力的发展、凝胶点以及微机械性能(维氏硬度 HV、弹性模量 E、蠕变 Cr 和弹塑性压痕功 W(e)/W(tot))(n = 10)。将实验性的可流动树脂基复合材料(RBC)与常规的甲基丙烯酸酯基微(Esthet X Flow)和纳米混合可流动 RBC(Filtek Supreme Plus Flow)进行比较。此外,还考虑了两种常规可流动甲基丙烯酸酯基复合材料(Esthet X Plus 和 Filtek Supreme Plus)的高粘度对应物以及低收缩硅烷基微混合复合材料(Filtek Silorane)。固化时间为 20s(LED 单元 Freelight2,3M-ESPE,1226 mW/cm²)。
实验材料的收缩应力(1.1 ±.01 MPa)最低,其次是硅烷基复合材料(3.6 ±.03 MPa),而常规甲基丙烯酸酯基可流动复合材料 EsthetX Flow(5.3 ±.3 MPa)和 Filtek Supreme Flow(6.5 ±.3 MPa)的应力值最高。就凝胶点而言,实验性的可流动复合材料(3.1 ±.1s)和 Filtek Silorane(3.2 ±.3s)获得了最佳值,它们彼此之间没有显著差异,而 EsthetX Plus 和 Filtek Supreme Plus 也没有显著差异,诱导的凝胶点最短。实验性的可流动材料还达到了最低的收缩率(最大值为 0.1 MPa/s)。对于所有分析的材料,在聚合后 24 小时以 2mm 厚的增量测量时,在顶部和底部的微机械性能之间没有发现显著差异。与混合复合材料相比,可流动 RBC 类别的微机械性能明显较差,表现出较低的 HV 和 E,以及主要较高的蠕变和塑性变形。在可流动 RBC 中,实验材料的维氏硬度最低,弹性模量最高,蠕变最高,弹性变形最低。
与常规甲基丙烯酸酯复合材料相比,实验性的可流动复合材料的收缩应力和收缩率值最低,但微机械性能中等。它的刚性(较高的弹性模量)和塑性(低 W(e)/W(tot)和高蠕变值)都高于常规可流动材料,因此其对界面应力积累的影响不容易预测。