Alrahlah Ali, Khan Rawaiz, Al-Odayni Abdel-Basit, Saeed Waseem Sharaf, Bautista Leonel S, Haider Sajjad, De Vera Merry Angelyn Tan, Alshabib Abdulrahman
Restorative Dental Sciences Department, College of Dentistry, King Saud University, Riyadh 11545, Saudi Arabia.
Engineer Abdullah Bugshan Research Chair for Dental and Oral Rehabilitation, College of Dentistry, King Saud University, Riyadh 11545, Saudi Arabia.
J Funct Biomater. 2023 Jun 17;14(6):323. doi: 10.3390/jfb14060323.
Resin composite mimics tooth tissues both in structure and properties, and thus, they can withstand high biting force and the harsh environmental conditions of the mouth. Various inorganic nano- and micro-fillers are commonly used to enhance these composites' properties. In this study, we adopted a novel approach by using pre-polymerized bisphenol A-glycidyl methacrylate (BisGMA) ground particles (XL-BisGMA) as fillers in a BisGMA/triethylene glycol dimethacrylate (TEGDMA) resin system in combination with SiO nanoparticles. The BisGMA/TEGDMA/SiO mixture was filled with various concentrations of XL-BisGMA (0, 2.5, 5, and 10 wt.%). The XL-BisGMA added composites were evaluated for viscosity, degree of conversion (DC), microhardness, and thermal properties. The results demonstrated that the addition of a lower concentration of XL-BisGMA particles (2.5 wt.%) significantly reduced ( ≤ 0.05) the complex viscosity from 374.6 (Pa·s) to 170.84. (Pa·s). Similarly, DC was also increased significantly ( ≤ 0.05) by the addition of 2.5 wt.% XL-BisGMA, with the pristine composite showing a DC of (62.19 ± 3.2%) increased to (69.10 ± 3.4%). Moreover, the decomposition temperature has been increased from 410 °C for the pristine composite (BT-SB0) to 450 °C for the composite with 10 wt.% of XL-BisGMA (BT-SB10). The microhardness has also been significantly reduced ( ≤ 0.05) from 47.44 HV for the pristine composite (BT-SB0) to 29.91 HV for the composite with 2.5 wt.% of XL-BisGMA (BT-SB2.5). These results suggest that a XL-BisGMA could be used to a certain percentage as a promising filler in combination with inorganic fillers to enhance the DC and flow properties of the corresponding resin-based dental composites.
树脂复合材料在结构和性能上都模仿牙齿组织,因此,它们能够承受高咬合力和口腔的恶劣环境条件。各种无机纳米和微填料通常用于增强这些复合材料的性能。在本研究中,我们采用了一种新方法,即将预聚合的双酚A-甲基丙烯酸缩水甘油酯(BisGMA)磨碎颗粒(XL-BisGMA)作为填料,与SiO纳米颗粒一起用于BisGMA/三乙二醇二甲基丙烯酸酯(TEGDMA)树脂体系中。BisGMA/TEGDMA/SiO混合物填充了不同浓度的XL-BisGMA(0、2.5、5和10 wt.%)。对添加了XL-BisGMA的复合材料进行了粘度、转化率(DC)、显微硬度和热性能评估。结果表明,添加较低浓度的XL-BisGMA颗粒(2.5 wt.%)可显著降低(≤0.05)复数粘度,从374.6(Pa·s)降至170.84(Pa·s)。同样,添加2.5 wt.%的XL-BisGMA也显著提高(≤0.05)了DC,原始复合材料的DC为(62.19±3.2%)提高到(69.10±3.4%)。此外,分解温度从原始复合材料(BT-SB0)的410℃提高到含有10 wt.% XL-BisGMA的复合材料(BT-SB10)的450℃。显微硬度也显著降低(≤0.05),从原始复合材料(BT-SB0)的47.44 HV降至含有2.5 wt.% XL-BisGMA的复合材料(BT-SB2.5)的29.91 HV。这些结果表明,XL-BisGMA可以在一定比例下作为一种有前景的填料,与无机填料结合使用,以提高相应树脂基牙科复合材料的DC和流动性能。