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混合高密度聚乙烯(HDPE)球体对实验性复合材料收缩应力及性能的影响。

Effect of admixed high-density polyethylene (HDPE) spheres on contraction stress and properties of experimental composites.

作者信息

Ferracane J L, Ferracane L L, Braga R R

机构信息

Department of Biomaterials and Biomechanics, Oregon Health & Science University, School of Dentistry, 611 SW Campus Drive, Portland, Oregon 97239, USA.

出版信息

J Biomed Mater Res B Appl Biomater. 2003 Jul 15;66(1):318-23. doi: 10.1002/jbm.b.10019.

Abstract

Additives that provide stress relief may be incorporated into dental composites to reduce contraction stress (CS). This study attempted to test the hypothesis that conventional fillers could be replaced by high-density polyethylene (HDPE) spheres in hybrid and nanofill composites to reduce CS, but with minimal effect on mechanical properties. Nanofill and hybrid composites were made from a Bis-GMA/TEGDMA resin having either all silica nanofiller or 75 wt.% strontium glass + 5 wt.% silica and replacing some of the nanofiller or the glass with 0%, 5% (hybrid only), 10% or 20 wt.% HDPE. The surface of the HDPE was either left untreated or had a reactive gas surface treatment (RGST). Contraction stress (CS) was monitored for 10 min in a tensilometer (n = 5) after light curing for 60 s at 390 mW/cm(2). Other specimens (n = 5) were light cured 40 s from two sides in a light-curing unit and aged 1 d in water before testing fracture toughness (K(Ic)), flexure strength (FS), and modulus (E). Results were analyzed by ANOVA with Tukey's multiple comparison test at p < 0.05. There was no difference between composites with RGST and untreated HDPE except for FS-10% HDPE hybrid (RGST higher). An increased level of HDPE reduced contraction stress for both types of composites. Flexure strength, modulus (hybrid only), and fracture toughness were also reduced as the concentration of HDPE increased. SEM showed evidence for HDPE debonding and plastic deformation during fracture of the hybrid composites. In conclusion, the addition of HDPE spheres reduces contraction stress in composites, either through stress relief or a reduction in elastic modulus.

摘要

可在牙科复合材料中加入具有缓解应力作用的添加剂,以降低收缩应力(CS)。本研究试图验证以下假设:在混合和纳米填料复合材料中,可用高密度聚乙烯(HDPE)微球替代传统填料,以降低CS,同时对机械性能的影响最小。纳米填料和混合复合材料由双酚A缩水甘油醚/三乙二醇二甲基丙烯酸酯(Bis-GMA/TEGDMA)树脂制成,该树脂含有全硅纳米填料或75 wt.%的锶玻璃+5 wt.%的二氧化硅,并将部分纳米填料或玻璃用0%、5%(仅混合复合材料)、10%或20 wt.%的HDPE替代。HDPE的表面要么不进行处理,要么进行活性气体表面处理(RGST)。在390 mW/cm²光照固化60 s后,在拉伸仪中监测收缩应力(CS)10分钟(n = 5)。其他试样(n = 5)在光固化单元中从两侧进行40 s光照固化,并在水中老化1天,然后测试断裂韧性(K(Ic))、弯曲强度(FS)和模量(E)。结果通过方差分析和Tukey多重比较检验进行分析,p < 0.05。除了FS-10% HDPE混合复合材料(RGST更高)外,RGST处理的HDPE复合材料和未处理的HDPE复合材料之间没有差异。HDPE含量的增加降低了两种类型复合材料的收缩应力。随着HDPE浓度的增加,弯曲强度、模量(仅混合复合材料)和断裂韧性也降低。扫描电子显微镜显示,在混合复合材料断裂过程中,HDPE出现脱粘和塑性变形。总之,添加HDPE微球可降低复合材料中的收缩应力,这可能是通过缓解应力或降低弹性模量实现的。

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