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评估牙科树脂复合材料中的填充物填充结构:从理论到实践。

Evaluation of the filler packing structures in dental resin composites: From theory to practice.

机构信息

Département de Chimie, Université de Montréal, C.P. 6128, Succursale Centre-ville, Montreal, QC, H3C 3J7, Canada; State Key Laboratory for Modification of Chemical Fibers and Polymer Materials, College of Material Science and Engineering, Donghua University, Shanghai 201620, China.

Département de Chimie, Université de Montréal, C.P. 6128, Succursale Centre-ville, Montreal, QC, H3C 3J7, Canada.

出版信息

Dent Mater. 2018 Jul;34(7):1014-1023. doi: 10.1016/j.dental.2018.03.022. Epub 2018 Apr 16.

Abstract

OBJECTIVES

The aim of this study is to evaluate the packing properties of uniform silica particles and their mixture with secondary particles yielding maximally loaded dental composites. We intend to verify the difference between the idealized models (the close-packed structures and the random-packed structures) and the actual experimental results, in order to provide guidance for the preparation of dental composites. The influence of secondary particle size and the resin composition on the physical-mechanical properties and the rheological properties of the experimental dental composites was also investigated.

METHODS

Silica particles (S-920, S-360, and S-195) with average diameters of 920, 360, and 195nm were synthesized via the Stöber process. Their morphology and size distribution were determined by field-emission scanning electron microscopy and laser particle sizer. A series of silica fillers, S-920, S-920+195, S-920+360, and S-920+360+195, were then formulated with two Bis-GMA/TEGDMA resins (weight ratios of 70:30 and 50:50). For these experimental dental composites, their maximum filler loadings were assessed and compared to the theory. The mechanical properties, degree of conversion, depth of cure, and polymerization shrinkage of these composites were then evaluated. Their rheological behaviors were measured with a rheometer.

RESULTS

Unimodal S-920 had the maximally filler loading of 70.80wt% with the 5B5T resin, close to the theoretical estimation of the random loose packing (71.92wt%). The maximum loading of the S-920+360+195 filled composite was 72.92wt% for the same resin, compared to the theoretical estimation of 89.29wt% obtained for the close-packed structures. These findings indicate that random loose packing matches more closely to the real packing state for the filler formulations used. When maximally loaded, the composite with S-920+360+195 produced the best mechanical properties and the lowest polymerization shrinkage. The degree of conversion and depth of cure were higher with secondary particles added, and the viscosity of all unpolymerized pastes exhibited shear thinning behavior.

SIGNIFICANCE

Theoretical estimations of filler packing structures provide a useful guidance in the design of multimodal filler formulations and the preparation of dental composites with higher filler loading, improved physical-mechanical properties.

摘要

目的

本研究旨在评估均匀二氧化硅颗粒的填充特性及其与次级颗粒的混合物,以获得最大负载的牙科复合材料。我们旨在验证理想模型(紧密堆积结构和随机堆积结构)与实际实验结果之间的差异,为牙科复合材料的制备提供指导。还研究了次级颗粒大小和树脂组成对实验性牙科复合材料的物理力学性能和流变性能的影响。

方法

通过 Stöber 工艺合成平均直径为 920nm、360nm 和 195nm 的二氧化硅颗粒(S-920、S-360 和 S-195)。通过场发射扫描电子显微镜和激光粒度仪确定其形态和粒径分布。然后用两种 Bis-GMA/TEGDMA 树脂(重量比为 70:30 和 50:50)配制一系列二氧化硅填料 S-920、S-920+195、S-920+360 和 S-920+360+195。然后评估这些实验性牙科复合材料的最大填料负载并与理论值进行比较。然后评估这些复合材料的机械性能、转化率、固化深度和聚合收缩。使用流变仪测量它们的流变行为。

结果

具有 5B5T 树脂的单峰 S-920 的最大填充量为 70.80wt%,接近随机松散堆积的理论估计(71.92wt%)。对于相同的树脂,S-920+360+195 填充复合材料的最大负载为 72.92wt%,而对于紧密堆积结构的理论估计为 89.29wt%。这些发现表明,对于所使用的填料配方,随机松散堆积更符合实际填充状态。在最大负载下,具有 S-920+360+195 的复合材料具有最佳的机械性能和最低的聚合收缩。加入次级颗粒后转化率和固化深度更高,所有未聚合糊剂的粘度均表现出剪切稀化行为。

意义

填料填充结构的理论估算为设计多模态填料配方和制备具有更高填料负载、改善物理力学性能的牙科复合材料提供了有用的指导。

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