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Thio-urethane Oligomers Improve The Properties Of Light-cured Resin Cements

机译:硫代氨基甲酸酯低聚物改善了光固化树脂水泥的性能

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摘要

Thio-urethanes were synthesized by combining 1,6-hexanediol-diissocyante (aliphatic) with pentaerythritol tetra-3-mercaptopropionate (PETMP) or 1,3-bis(1-isocyanato-1-methylethyl)benzene (aromatic) with trimethylol-tris-3-mercaptopropionate (TMP), at 1:2 isocyanate:thiol, leaving pendant thiols. Oligomers were added at 10-30 phr to BisGMA-UDMA-TEGDMA (5:3:2, BUT). 25 wt% silanated inorganic fillers were added. Commercial cement (Relyx Veneer, 3M-ESPE) was also evaluated with 10-20 phr of aromatic oligomer. Near-IR was used to follow methacrylate conversion (DC) and rate of polymerization (Rp(max)). Mechanical properties were evaluated in three-point bending (ISO 4049) for flexural strength/modulus (FS/FM, and toughness), and notched specimens (ASTM Standard E399-90) for fracture toughness (KO. Polymerization stress (PS) was measured on the Bioman. Volumetric shrinkage (VS, %) was measured with the bonded disk technique. Results were analyzed with ANOVA/Tukey's test (alpha = 5%). In general terms, for BUT cements, conversion and mechanical properties in flexure increased for selected groups with the addition of thio-urethane oligomers. The aromatic versions resulted in greater FS/FM than aliphatic. Fracture toughness increased by twofold in the experimental groups (from 1.17 +/- 0.36 MPa m(1/2) to around 3.23 +/- 0.22 MPa m(1/2)). Rp(max) decreased with the addition of thio-urethanes, though the vitrification point was not statistically different from the control. VS and PS decreased with both oligomers. For the commercial cement, 20 phr of oligomer increased DC, vitrification, reduced Rpmax and also significantly increased K-IC, and reduced PS and FM. Thio-urethane oligomers were shown to favorably modify conventional dimethacrylate networks. Significant reductions in polymerization stress were achieved at the same time conversion and fracture toughness increased. (C) 2015 Academy of Dental Materials. Published by Elsevier Ltd. All rights reserved.
机译:通过将1,6-己二醇-二硫氰酸酯(脂族)与季戊四醇四-3-巯基丙酸酯(PETMP)或1,3-双(1-异氰酸根合-1-甲基乙基)苯(芳族)与三羟甲基-三羟甲基氨基甲烷结合来合成硫代氨基甲酸酯-3-巯基丙酸酯(TMP),异氰酸酯:硫醇的比例为1:2,剩下硫醇侧基。将低聚物以10-30 phr加入BisGMA-UDMA-TEGDMA(5:3:2,BUT)。加入25重量%的硅烷化无机填料。商业水泥(Relyx Veneer,3M-ESPE)也用10-20 phr的芳香族低聚物进行了评估。近红外用于跟踪甲基丙烯酸酯转化率(DC)和聚合速率(Rp(max))。在三点弯曲(ISO 4049)中评估机械性能的弯曲强度/模量(FS / FM和韧性),并开槽试样(ASTM Standard E399-90)评估断裂韧性(KO。)测定聚合应力(PS)在Bioman上,用粘结圆盘技术测量体积收缩率(VS,%),用ANOVA / Tukey检验(α= 5%)分析结果,一般而言,BUT水泥的挠曲转化率和机械性能提高。选定的组中添加了硫代氨基甲酸酯低聚物,芳族版本导致的FS / FM高于脂族,实验组的断裂韧性提高了两倍(从1.17 +/- 0.36 MPa m(1/2)增至约3.23 + /-0.22 MPa m(1/2)),尽管硫化聚氨酯的玻璃化点与对照组无统计学差异,但加入硫代氨基甲酸酯后Rp(max)降低;两种低聚物的VS和PS均降低。 20 phr的低聚物增加DC,玻璃化,还原导致Rpmax降低,K-IC显着增加,PS和FM降低。硫代氨基甲酸酯低聚物被证明可以很好地修饰常规的二甲基丙烯酸酯网络。同时转化率显着降低了聚合应力,断裂韧性提高了。 (C)2015年牙科材料学院。由Elsevier Ltd.出版。保留所有权利。

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