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Analysis of the interdiffusion of resin monomers into pre-polymerized fiber-reinforced composites

机译:树脂单体在预聚合纤维增强复合物中的相互扩散分析

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摘要

Objectives. The aim of the study was to analyze the dissolving depth of adhesive resin monomers into pre-polymerized fiber-reinforced composites (FRC) with either a semi-interpenetrating polymer network (semi-IPN) or a cross-linked polymer (CLP) matrix. Methods. Five unidirectional FRCs were tested, including one semi-IPN FRC (everStick~R C&B, StickTech, (ES)) and four CLP-FRCs (GrandTec~R, VOCO, (GT); Dentapreg~R, ADM, (DP); TenderFiber~R, Micerium, (TF); Splint-It~R, Pentron Clinical Technologies, (SI)). The FRCs were light-polymerized following manufacturers' instructions: the oxygen inhibition layers were removed and the adhesive resin (Optibond-FL~R, KerrHawe) was labeled with a fluorescent dye (Rhodamine-B-isothiocyanate), which was then applied to the FRCs (5min) and light-polymerized (40 s). Specimens were then prepared for confocal laser scanning microscopy. Three FRC strands per group were sectioned orthogonally to the direction of fibers, thus forming nine slices in each group. Four images were taken from each slice and the depths of adhesive penetration were measured in four sites per image (n = 144 measurements per group). Significance. Dissolving depths were 17.28 (3.04) μm (ES), 12.58 (2.94) μm (SI), 7.57 (1.91) μm (TF), 3.27 (0.73) μm (DP) and 2.55 (0.63) μm (GT). Samples were normally distributed. Differences between groups were analyzed by ANOVA (PostHoc Scheffe) showing four subgroups (p = 0.05). The infiltration layers detected were either continuous/homogenous (ES, TF, DP GT) or discontinuous/insular (SI). Conclusion. The adhesive resin monomers were able to diffuse significantly deeper into pre-polymerized semi-IPN specimens than into CLP materials. Semi-IPN specimens showed a homogenous and comparatively deeper layer of infiltration. The diffusion capabilities of secondary-IPN formation might increase the opportunity to establish a good bond between pre-polymerized FRC and new resin.
机译:目标。该研究的目的是分析粘合剂树脂单体在具有半互穿聚合物网络(semi-IPN)或交联聚合物(CLP)基质的预聚合纤维增强复合材料(FRC)中的溶解深度。方法。测试了五个单向FRC,包括一个半IPN FRC(everStick-R C&B,StickTech,(ES))和四个CLP-FRC(GrandTec-R,VOCO(GT); Dentapreg-R,ADM,(DP); TenderFiber_R,Micerium,(TF); Splint-It_R,Pentron Clinical Technologies,(SI)。按照制造商的说明对FRC进行光聚合:除去氧气抑制层,并用荧光染料(若丹明-B-异硫氰酸酯)标记粘合树脂(Optibond-FL〜R,KerrHawe),然后将其应用于FRC(5分钟)和轻度聚合(40 s)。然后准备用于共聚焦激光扫描显微镜的标本。每组三根FRC股被垂直于纤维的方向切开,从而在每组中形成九个切片。从每个切片获取四张图像,并在每个图像的四个位置测量粘合剂渗透的深度(每组n = 144次测量)。意义。溶解深度为17.28(3.04)μm(ES),12.58(2.94)μm(SI),7.57(1.91)μm(TF),3.27(0.73)μm(DP)和2.55(0.63)μm(GT)。样品呈正态分布。通过ANOVA(PostHoc Scheffe)分析组之间的差异,显示出四个亚组(p = 0.05)。检测到的渗透层是连续/均匀的(ES,TF,DP GT)或不连续/绝缘的(SI)。结论。粘合树脂单体能够比CLP材料更深地扩散到预聚合的半IPN样品中。半IPN标本显示出均匀且相对较深的浸润层。二次IPN形成的扩散能力可能会增加在预聚合的FRC和新树脂之间建立良好键合的机会。

著录项

  • 来源
    《Dental materials》 |2012年第5期|p.541-547|共7页
  • 作者单位

    Department of Conservative Dentistry, School of Dental Medicine, University Hospital Heidelberg, Germany;

    Department of Conservative Dentistry, School of Dental Medicine, University Hospital Heidelberg, Germany;

    Department of Conservative Dentistry, School of Dental Medicine, University Hospital Heidelberg, Germany;

    Department of Conservative Dentistry, School of Dental Medicine, University Hospital Heidelberg, Germany;

    School of Dental Medicine, University Hospital Heidelberg, Department of Conservative Dentistry, Im Neuenheimer Feld 400, 69120 Heidelberg, Germany;

  • 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

    CLSM visualization technique; fluorescent dye; adhesive resin; interpenetrating polymer network; fiber-reinforced composite;

    机译:CLSM可视化技术;荧光染料粘合树脂互穿聚合物网络纤维增强复合材料;
  • 入库时间 2022-08-18 03:47:07

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