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Depth of cure and mechanical properties of nano-hybrid resin-based composites with novel and conventional matrix formulation

机译:具有新型和常规基体配方的纳米混合树脂基复合材料的固化深度和机械性能

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摘要

Objectives: This study's purpose was to evaluate the depth of cure (DOC) and the variation of mechanical properties with depth of two nano-hybrid resin-based composites (RBCs) containing a novel monomer composition based on dimer-acid derivatives (h-Da) or rather tricyclodecane-urethane structure (TCD-urethane) compared to three conventionally formulated nano-hybrid RBCs based on hardness-profile measurements. Materials and methods: Specimens were produced through different layering techniques (bulk, incremental) and curing times (10, 20, and 40 s). Mechanical properties (Vickers hardness (HV), modulus of elasticity (E)) were evaluated every 100 μm longitudinally throughout the bisected samples using an automatic micro-hardness indenter. DOC was determined as the depth at which the 80% hardness cutoff value in relation to the surface hardness was reached. Results were compared using one- and multiple-way ANOVA, Tukey HSD post-hoc test (α = 0. 05) and partial eta-squared statistic. Results: Increasing curing time resulted in a significant increase in DOC. Generally, the novel-formulated materials showed higher DOC values. "Curing time" and "material" showed the strongest effect on DOC. Starting in 4 mm depth, significantly higher HV and E was reached for incremental compared to bulk-curing technique. Values in 0. 1 and 2 mm depth (bulk, incremental) as well as in 4 mm depth (incremental) were independent from curing time, while in greater depths, values generally increased with curing time. "Filling technique" and "material" performed the strongest influence on mechanical properties. Conclusions: Within the limits of this study, the novel-formulated RBCs showed better performance concerning DOC compared to conventional materials. Clinical relevance: For cavities deeper than 3 mm, all tested materials should be placed incrementally to ensure adequate polymerization. In large cavities (≥6 mm), the lowest increment should be cured at least 40 s. The novel-formulated RBCs might be cured in comparatively bigger increments.
机译:目的:本研究的目的是评估两种基于二聚酸衍生物(h-Da)的新型单体组成的纳米混合树脂基复合材料(RBC)的固化深度(DOC)和力学性能随深度的变化。 )或三环癸烷-氨基甲酸酯结构(TCD-氨基甲酸酯)与基于硬度分布测量的三个常规配制的纳米混合RBC相比。材料和方法:样品是通过不同的分层技术(批量,增量)和固化时间(10、20和40 s)制成的。使用自动显微硬度压头,在整个平分的样品中,每100μm纵向评估机械性能(维氏硬度(HV),弹性模量(E))。 DOC被确定为达到相对于表面硬度的80%硬度临界值的深度。使用单向和多重方差分析,Tukey HSD事后检验(α= 0. 05)和部分eta方统计量比较结果。结果:增加固化时间导致DOC显着增加。通常,新配制的材料显示出较高的DOC值。 “固化时间”和“材料”对DOC的影响最大。与批量固化技术相比,从4毫米深度开始,增量和增量均达到了更高的HV和E。 0. 1和2 mm深度(本体,增量)以及4 mm深度(增量)中的值与固化时间无关,而在更大的深度中,值通常随固化时间而增加。 “填充技术”和“材料”对机械性能的影响最大。结论:在这项研究的范围内,与传统材料相比,新型配方的RBC在DOC方面表现出更好的性能。临床意义:对于深于3毫米的型腔,应逐步放置所有测试材料以确保充分聚合。在大腔体(≥6mm)中,最低增量应至少固化40 s。新配制的RBC可能以相对较大的增量固化。

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