金属氧化物和菠萝纤维强化牙科复合树脂的性能

IF 0.9 Q4 MATERIALS SCIENCE, MULTIDISCIPLINARY Physics and Chemistry of Solid State Pub Date : 2023-12-16 DOI:10.15330/pcss.24.4.692-698
R.I.S. Asri, B. Sunendar, I. Dwiandhono, A. Harmaji
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引用次数: 0

摘要

本研究旨在合成氧化铝-氧化锆-碳酸盐磷灰石形式的填料和菠萝叶纤维(Ananas comosus (L.) Merr),作为由 UDMA、TEGDMA 和 DMAEMA 组成的基质增强剂,直接用于牙科修复。样品由四组复合材料组成,纤维添加量为 0-5%。然后对所有复合材料样品进行了硬度、抗弯强度和扫描电子显微镜(SEM)测试。未添加纤维的复合材料硬度测试结果为 30.31 VHN。添加 1%、2.5% 和 5%纤维后,复合材料的硬度值分别为 31.13 VHN、34.02 VHN 和 27.22 VHN。三点弯曲试验结果表明,未添加纤维的样品的抗弯强度为 1.6 兆帕,而添加 1%、2.5% 和 5%纤维的样品的抗弯强度分别为 2.1 兆帕、2.3 兆帕和 1.8 兆帕。扫描电子显微镜(SEM)结果显示,颗粒分散形态均匀,存在不同的团聚和间隙。与未添加纤维的复合材料相比,添加了 1%和 2.5%纤维的复合材料间隙更窄。这就解释了为什么复合材料的硬度和抗弯强度都有所提高。
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Properties of Metal Oxide and Pineapple Fiber Reinforced Dental Composite Resin
This study aimed to synthesize fillers in the form of alumina-zirconia-carbonate apatite and pineapple leaf fiber (Ananas comosus (L.) Merr) as matrix reinforcement consisting of UDMA, TEGDMA, and DMAEMA for direct dental restoration applications. The sample consisted of four composite groups with the addition of 0-5% fiber. All composite samples were then tested for hardness, flexural strength, and Scanning Electron Microscope (SEM). The results of the composite hardness test without the addition of fiber were 30.31 VHN. With the addition of 1%, 2.5%, and 5% fiber, the composite has a hardness value of 31.13 VHN, 34.02 VHN, and 27.22 VHN, respectively. The results of the three-point bending test showed that the flexural strength of the sample without the addition of fiber was 1.6 MPa, while the addition of 1%, 2.5%, and 5% fiber resulted in the flexural strength of 2.1 MPa, 2.3 MPa, and 1.8 MPa, respectively. The SEM results show a homogeneous particle dispersion morphology, with various agglomerations and gaps. Composites with the addition of 1% and 2.5% fiber have a narrower gap than without the addition of fiber. This explains the increase in the hardness and flexural strength of the composite.
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来源期刊
CiteScore
1.70
自引率
14.30%
发文量
83
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