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树脂复合材料的聚合收缩动力学与固化程度

Polymerization shrinkage kinetics and degree of conversion of resin composites.

作者信息

Xu Tong, Li Xuan, Wang Han, Zheng Gang, Yu Gaigai, Wang Huimin, Zhu Song

机构信息

Department of Prosthodontics, School and Hospital of Stomatology, Jilin University.

Department of Dental Materials, School and Hospital of Stomatology, Peking University.

出版信息

J Oral Sci. 2020 Jun 23;62(3):275-280. doi: 10.2334/josnusd.19-0157. Epub 2020 Jun 4.

Abstract

This study compared shrinkage strain, polymerization shrinkage kinetics, and degree of conversion (DC) of a set of resin composites and investigated their influencing factors. Ten commercial resin composites were assessed, and 5 specimens (n = 5) were developed for material and subjected to light curing using light emitting diode light at 650 mW/cm for 40 s. The laser triangulation method was adopted to assess the shrinkage strain, and Fourier transform infrared spectroscopy was used to measure DC. The shrinkage strain was monitored for 5 min in real time and its data were subjected to differential calculations to get the shrinkage strain rate curve with respect to time, obtaining the maximum shrinkage strain rate (R) and gel time. The values of shrinkage strain varied from 1.28% to 2.10%. The R values were between 5.17 μm/s and 21.83 μm/s. Gel time values varied from 3.08 s to 4.32 s. The DC yielded values ranging from 53.62% to 87.01%. The values of polymerization shrinkage and DC were dependent on the composition of materials, including the monomer matrix and filler system. Compared to the micro-filler materials, the nano-filler resin composites had higher values of DC. Some resin composites are suitable for clinical applications because of their superior polymerization shrinkage properties and DC.

摘要

本研究比较了一组树脂复合材料的收缩应变、聚合收缩动力学和转化率(DC),并研究了它们的影响因素。评估了10种市售树脂复合材料,制备了5个试件(n = 5)用于材料研究,并使用650 mW/cm的发光二极管光进行40 s的光固化。采用激光三角测量法评估收缩应变,使用傅里叶变换红外光谱法测量DC。实时监测收缩应变5分钟,并对其数据进行微分计算,以获得收缩应变率随时间的曲线,从而得到最大收缩应变率(R)和凝胶时间。收缩应变值在1.28%至2.10%之间。R值在5.17μm/s至21.83μm/s之间。凝胶时间值在3.·08 s至4.32 s之间。DC值在53.62%至87.01%之间。聚合收缩和DC值取决于材料组成,包括单体基质和填料体系。与微填料材料相比,纳米填料树脂复合材料的DC值更高。一些树脂复合材料因其优异的聚合收缩性能和DC而适用于临床应用。

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