Yan Shuogeng, Wang Kun, Wang Zhengzhi
Department of Engineering Mechanics, School of Civil Engineering, Wuhan University, Wuhan 430072, China.
Wuhan University Shenzhen Research Institute, Shenzhen 518108, China.
Polymers (Basel). 2023 Feb 23;15(5):1129. doi: 10.3390/polym15051129.
Dental resin composites are universal restorative materials, and various kinds of fillers are used to reinforce their mechanical properties. However, a combined study on the microscale and macroscale mechanical properties of dental resin composites is missing, and the reinforcing mechanism of the composites is still not fully clarified. In this work, the effects of the nano-silica particle on the mechanical properties of dental resin composites were studied by combined dynamic nanoindentation tests and macroscale tensile tests. The reinforcing mechanism of the composites was explored by combining near-infrared spectroscopy, scanning electron microscope, and atomic force microscope characterizations. It was found that the tensile modulus increased from 2.47 GPa to 3.17 GPa, and the ultimate tensile strength increased from 36.22 MPa to 51.75 MPa, with the particle contents increasing from 0% to 10%. From the nanoindentation tests, the storage modulus and hardness of the composites increased by 36.27% and 40.90%, respectively. The storage modulus and hardness were also found to increase by 44.11% and 46.46% when the testing frequency increased from 1 Hz to 210 Hz. Moreover, based on a modulus mapping technique, we found a boundary layer in which the modulus gradually decreased from the edge of the nanoparticle to the resin matrix. Finite element modeling was adopted to illustrate the role of this gradient boundary layer in alleviating the shear stress concentration on the filler-matrix interface. The present study validates mechanical reinforcement and provides a potential new insight for understanding the reinforcing mechanism of dental resin composites.
牙科树脂复合材料是通用的修复材料,人们使用各种填料来增强其机械性能。然而,目前缺少对牙科树脂复合材料微观和宏观机械性能的综合研究,复合材料的增强机制仍未完全阐明。在这项工作中,通过动态纳米压痕试验和宏观拉伸试验相结合的方法,研究了纳米二氧化硅颗粒对牙科树脂复合材料机械性能的影响。通过结合近红外光谱、扫描电子显微镜和原子力显微镜表征,探索了复合材料的增强机制。研究发现,随着颗粒含量从0%增加到10%,拉伸模量从2.47 GPa增加到3.17 GPa,极限拉伸强度从36.22 MPa增加到51.75 MPa。通过纳米压痕试验可知,复合材料的储能模量和硬度分别提高了36.27%和40.90%。当测试频率从1 Hz增加到210 Hz时,储能模量和硬度也分别提高了44.11%和46.46%。此外,基于模量映射技术,我们发现了一个边界层,其中模量从纳米颗粒边缘到树脂基体逐渐降低。采用有限元建模来说明这种梯度边界层在减轻填料 - 基体界面处剪切应力集中方面的作用。本研究验证了机械增强作用,并为理解牙科树脂复合材料的增强机制提供了潜在的新见解。