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Investigation on the physical-mechanical properties of dental resin composites reinforced with novel bimodal silica nanostructures

机译:新型双峰二氧化硅纳米结构增强牙科树脂复合材料的物理力学性能研究

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The aim of this study was to investigate the influence of bimodal silica nanostructures comprising of SiO2 nanoparticles (Sit)2 NPs, similar to 70 nm) and SiO2 nanoclusters (SiO2 NCs, 0.07-2.70 pm) on physical-mechanical properties of resin-based composites (RBCs). SiO2 NPs and SiO2 NCs were prepared with the Stober method and the coupling reaction, respectively, then silanized and employed as fillers to construct RBCs using a mixture of bisphenol A glycerolate dimethacrylate (Bis-GMA) and tri(ethylene glycol) dimethacrylate (TEGDMA) as the organic matrix. Results showed that the properties of RBCs were influenced by the filler ratios of bimodal silica nanostructures, and the appropriate amount of SiO2 NPs could effectively increase the activating light efficiency and filler packing density of RBCs. Among all experimental RBCs, RBC 50-20 (SiO(2)NPs:SiO2NCs = 50:20, wt/wt) presented the highest degree of conversion (71.6 +/- 1.1%), the lowest polymerization shrinkage (2.6 +/- 0.1%), and the enhanced flexural strength (104.8 +/- 4.4 MPa), flexural modulus (6.2 +/- 0.3 GPa), and compressive strength (205.8 +/- 143 MPa), which were improved by 44%, 19%, 28%, 48%, and 42% in comparison with those of RBC 0-60 (SiO2 NPs:SiO2 NCs = 0:60, wt/wt), respectively. Besides, in vitro cytotoxicity evaluation of RBC 50-20 indicated its acceptable cytotoxicity. Although the best performance was achieved by commercial Z350 XT, the introduction of bimodal silica nanostructures might provide the enhanced physical-mechanical properties of RBCs, compared with those of RBC 0-60 reinforced with unimodal SiO2 NCs. (C) 2015 Elsevier B.V. All rights reserved.
机译:这项研究的目的是研究由SiO2纳米颗粒(Sit)2 NPs(类似于70 nm)和SiO2纳米簇(SiO2 NCs,0.07-2.70 pm)组成的双峰二氧化硅纳米结构对树脂基物理机械性能的影响复合材料(RBC)。 SiO2 NPs和SiO2 NCs分别通过Stober方法和偶联反应制备,然后硅烷化并用作填充剂,使用双酚A甘油二酸酯二甲基丙烯酸酯(Bis-GMA)和三(乙二醇)二甲基丙烯酸酯(TEGDMA)的混合物构建RBC。作为有机基质。结果表明,双峰二氧化硅纳米结构的填充比影响了红细胞的性能,适量的SiO2 NPs可以有效提高红细胞的活化光效率和填充密度。在所有实验RBC中,RBC 50-20(SiO(2)NPs:SiO2NCs = 50:20,wt / wt)表现出最高的转化率(71.6 +/- 1.1%),最低的聚合收缩率(2.6 +/-) 0.1%),提高的弯曲强度(104.8 +/- 4.4 MPa),弯曲模量(6.2 +/- 0.3 GPa)和抗压强度(205.8 +/- 143 MPa),分别提高了44%,19%与RBC 0-60(SiO2 NPs:SiO2 NCs = 0:60,wt / wt)相比,分别为28%,48%和42%。此外,对RBC 50-20的体外细胞毒性评价表明其可接受的细胞毒性。尽管商用Z350 XT可获得最佳性能,但与单峰SiO2 NC增强的RBC 0-60相比,引入双峰二氧化硅纳米结构可能会提高RBC的物理机械性能。 (C)2015 Elsevier B.V.保留所有权利。

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