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R-curve behavior and toughening mechanisms of resin-based dental composites: Effects of hydration and post-cure heat treatment

机译:树脂基牙科复合材料的R曲线行为和增韧机理:水合和固化后热处理的影响

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摘要

Objectives. To test the hypothesis that the fracture resistance of two different particulate resin composites degrade after water hydration and improve after post-cure heat treatment, and to correlate those changes with salient failure micromechanisms.rnMethods. Two composites with different filler morphology were selected, denoted micro-hybrid (Filtek™ Z250) and nanofill (Filtek™ Supreme plus). Following initial light curing, hydrated samples were aged in water for 60 days at room temperature while post-cured samples were heat treated at 120 ℃ for 90 min. Fracture resistance was assessed using fracture resistance curves (R-curves) utilizing pre-cracked compact tension, C(T), specimens. The flexural strength of the hydrated composites also was evaluated in four-point bending using unnotched beams. Scanning electron microscopy (SEM) of crack paths and fracture surfaces was performed to determine the micromechanisms of fracture and toughening. The results were compared by two-way ANOVA and Tukey's multiple comparison test (p ≤ 0.05). Results. SEM observations revealed a predominantly interparticle matrix crack path for all cases except the hydrated nanofill composite, which showed evidence of particle matrix debonding. Hydration lowered the strength for both composites and the peak toughness for the nanofill composite. The strength decrease was attributed to resin matrix plasticization and hydrolytic degradation in both cases, with additional interfacial degradation causing a larger strength decline and concomitant peak toughness decrease in the nanofill composite. The post-cure heat treatment noticeably changed the R-curve shape causing the peak toughness to be reached after shorter amounts of crack extension. Such changes help explain the increases in strength reported in other studies and is attributed to improved resin matrix properties.rnSignificance. Results from this study provide new insight into the micromechanisms of fracture in resin-based dental composites which should aid the future development and improvement of these materials.
机译:目标。为了检验以下假设:两种不同的颗粒树脂复合材料的抗断裂性在水合后会降低,在后固化热处理后会有所改善,并将这些变化与显着的破坏微观机制相关联。选择了两种具有不同填料形态的复合材料,分别称为微混合(Filtek™Z250)和纳米填料(Filtek™Supreme plus)。初始光固化后,将水合的样品在室温下于水中老化60天,而后固化的样品则在120℃下热处理90分钟。使用预裂纹压紧力C(T)的抗断裂强度曲线(R曲线)评估抗断裂强度。还使用无缺口梁在四点弯曲中评估了水合复合材料的弯曲强度。进行裂纹路径和断裂表面的扫描电子显微镜(SEM),以确定断裂和增韧的微观机制。通过双向方差分析和Tukey多重比较测试比较结果(p≤0.05)。结果。 SEM观察结果显示,除水合纳米填充复合材料外,所有情况下主要的颗粒间基质开裂路径均显示出颗粒基质脱粘的迹象。水合降低了两种复合材料的强度和纳米填充复合材料的峰值韧性。在两种情况下,强度下降均归因于树脂基体的增塑和水解降解,另外的界面降解导致纳米填料复合材料的强度下降较大,同时峰值韧性下降。固化后热处理显着改变了R曲线的形状,从而在较短的裂纹扩展量之后达到了峰值韧性。此类变化有助于解释其他研究中报告的强度增加,并且归因于树脂基质性能的改善。这项研究的结果为树脂基牙科复合材料的断裂微观机理提供了新的见识,这将有助于这些材料的未来发展和改进。

著录项

  • 来源
    《Dental materials》 |2009年第6期|760-770|共11页
  • 作者单位

    Materials Science, School of Mechanical, Industrial, and Manufacturing Engineering, Oregon State University, Corvallis, OR, USA;

    Division of Biomaterials & Biomechanics, School of Dentistry, Oregon Health & Science University, Portland, OR, USA;

    Materials Science, School of Mechanical, Industrial, and Manufacturing Engineering, Oregon State University, Corvallis, OR, USA;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    resin composite; R-curve; crack bridging; fracture; hydration; Post-cure; toughening;

    机译:树脂复合材料R曲线裂纹桥接断裂;保湿后固化增韧;

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