Tekin Tuçe Hazal, Kantürk Figen Aysel, Yılmaz Atalı Pınar, Coşkuner Filiz Bilge, Pişkin Mehmet Burçin
Bioengineering Department, Yıldız Technical University, Istanbul, Turkey.
Chemical Engineering Department, Yıldız Technical University, Istanbul, Turkey.
Mater Sci Eng C Mater Biol Appl. 2017 Aug 1;77:436-445. doi: 10.1016/j.msec.2017.03.251. Epub 2017 Mar 28.
The objective of this study was to investigate the full in-vitro analyses of new-generation bulk-fill dental composites cured by halogen light (HLG). Two types' four composites were studied: Surefill SDR (SDR) and Xtra Base (XB) as bulk-fill flowable materials; QuixFill (QF) and XtraFill (XF) as packable bulk-fill materials. Samples were prepared for each analysis and test by applying the same procedure, but with different diameters and thicknesses appropriate to the analysis and test requirements. Thermal properties were determined by thermogravimetric analysis (TG/DTG) and differential scanning calorimetry (DSC) analysis; the Vickers microhardness (VHN) was measured after 1, 7, 15 and 30days of storage in water. The degree of conversion values for the materials (DC, %) were immediately measured using near-infrared spectroscopy (FT-IR). The surface morphology of the composites was investigated by scanning electron microscopes (SEM) and atomic-force microscopy (AFM) analyses. The sorption and solubility measurements were also performed after 1, 7, 15 and 30days of storage in water. In addition to his, the data were statistically analyzed using one-way analysis of variance, and both the Newman Keuls and Tukey multiple comparison tests. The statistical significance level was established at p<0.05. According to the ISO 4049 standards, all the tested materials showed acceptable water sorption and solubility, and a halogen light source was an option to polymerize bulk-fill, resin-based dental composites.
本研究的目的是对新一代用卤素光(HLG)固化的大体积填充牙科复合材料进行全面的体外分析。研究了两种类型的四种复合材料:Surefill SDR(SDR)和Xtra Base(XB)作为大体积填充可流动材料;QuixFill(QF)和XtraFill(XF)作为可压实大体积填充材料。通过应用相同的程序,但根据分析和测试要求采用不同的直径和厚度,为每种分析和测试制备样品。通过热重分析(TG/DTG)和差示扫描量热法(DSC)分析确定热性能;在水中储存1、7、15和30天后测量维氏显微硬度(VHN)。使用近红外光谱(FT-IR)立即测量材料的转化率值(DC,%)。通过扫描电子显微镜(SEM)和原子力显微镜(AFM)分析研究复合材料的表面形态。在水中储存1、7、15和30天后也进行吸附和溶解度测量。除此之外,使用单因素方差分析以及纽曼-丘尔斯和图基多重比较检验对数据进行统计分析。统计学显著性水平设定为p<0.05。根据ISO 4049标准,所有测试材料均显示出可接受的吸水性和溶解性,并且卤素光源是聚合大体积填充、树脂基牙科复合材料的一种选择。