Aboelwafa Mona R, Shaheen Sarah D
Department of Conservative Dentistry, Faculty of Dentistry, Sinai University, Kantara, Ismailia, Egypt.
Department of Operative Dentistry, Faculty of Oral and Dental Surgery, Misr University for Science and Technology, Cairo, Egypt.
Eur J Dent. 2024 Oct;18(4):1116-1123. doi: 10.1055/s-0044-1785188. Epub 2024 May 17.
Conventional glass ionomer cements (GICs) have been considered the most prevalent restorative material however; the reduced mechanical qualities and decreased wear resistance have been the main challenges facing their wide clinical application. This study was designed to assess the mechanical properties of fluorinated graphene (FG) oxide-modified conventional GIC.
Composites of FG/GIC samples were prepared using (Medifil from PROMEDICA, Germany, shade A3) at different concentrations (0wt%) control group and (1wt%, 2wt% and 3wt% FG) groups using cylindrical molds (3mm × 6mm). FG was prepared using hydrothermal technique and characterized using XPERT-PRO Powder Diffractometer system for X-ray diffraction analysis and JEOL JEM-2100 high resolution transmission electron microscope. Vickers' hardness and wear resistance of GI samples were measured. Mechanical abrasion was performed via three-body tooth brushing wear test using ROBOTA chewing simulator coupled with a thermocycling protocol (Model ACH-09075DC-T, AD-Tech Technology Co., Ltd., Leinfelden-Echterdingen, Germany).
Comparisons between groups with respect to normally distributed numeric variables were performed using one-way analysis of variance test followed by posthoc test. While paired -test was utilized for comparing data within the same group.
The surface roughness values of GICs (1wt% FG) and (2wt% FG) composites were significantly lower than those of the control and 3wt%FG groups. Vickers' hardness numbers were significantly higher in FG/GICs composites than in the control group (≤0.05).
GIC/FG combinations have sufficient strength to resist the occlusion stresses with improved hardness as compared with conventional GIC. GIC/FG appeared to be a promising restorative material.
传统玻璃离子水门汀(GIC)一直被认为是最常用的修复材料,然而,其机械性能的降低和耐磨性的下降一直是其广泛临床应用面临的主要挑战。本研究旨在评估氟化石墨烯(FG)氧化物改性传统GIC的机械性能。
使用(德国PROMEDICA公司的Medifil,A3色)在不同浓度(0wt%)对照组和(1wt%、2wt%和3wt% FG)组,通过圆柱形模具(3mm×6mm)制备FG/GIC样品复合材料。FG采用水热技术制备,并使用X射线衍射分析的XPERT-PRO粉末衍射仪系统和JEOL JEM-2100高分辨率透射电子显微镜进行表征。测量GI样品的维氏硬度和耐磨性。通过使用ROBOTA咀嚼模拟器结合热循环方案(ACH-09075DC-T型,德国莱因费尔德-埃希廷根的AD-Tech技术有限公司)的三体牙刷磨损试验进行机械磨损。
对于正态分布的数值变量,组间比较采用单因素方差分析,随后进行事后检验。而配对检验用于比较同一组内的数据。
GICs(1wt% FG)和(2wt% FG)复合材料的表面粗糙度值显著低于对照组和3wt% FG组。FG/GICs复合材料的维氏硬度值显著高于对照组(≤0.05)。
与传统GIC相比,GIC/FG组合具有足够的强度来抵抗咬合应力,硬度有所提高。GIC/FG似乎是一种有前途的修复材料。