Influence of the hydroperoxide structure on the reactivity and mechanical properties of self-cure dental composites

IF 4.6 1区 医学 Q1 DENTISTRY, ORAL SURGERY & MEDICINE
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Abstract

Objectives

Hydroperoxides are key constituents of two-component dental materials. The objective of this study was to evaluate the influence of the hydroperoxide structure on the reactivity and on the mechanical properties of self-cure composites.

Methods

Hydroperoxides HP1–3 were synthesized by selective catalytic oxidation of the corresponding para-substituted cumene precursors and isolated in high purity. They were characterized by 1H NMR and 13C NMR spectroscopy. 16 self-cure composites, based on the redox initiator system hydroperoxide (Cumene hydroperoxide (CHP), HP1–3 or tert.-Amyl hydroperoxide (TAH))/polymerizable thiourea ATU1/copper(II) acetylacetonate, were formulated in Sulzer Mixpac two-component syringes. An equimolar hydroperoxide/ATU1 ratio was selected for each self-cure composite. The reactivity and the final double-bond conversions obtained with these two-component materials was assessed using RT-FTIR spectroscopy. The flexural strength and modulus were measured using a three-point bending setup, after storage of the specimens for 45 min at 37 °C (dry) and for 24 h in water at 37 °C. The working time of each self-cure composite was measured using an oscillating rheometer.

Results

CHP derivatives bearing an electron withdrawing group (HP2: ester or HP3: nitrile) in the para position were found to be more reactive than CHP, whereas the compound bearing an electron donating group (tert-butyl, HP1) was less reactive; molecular modelling data were reported for a better understanding of this structure/reactivity/efficiency relationship. All CHP derivatives were more reactive than the aliphatic hydroperoxide TAH. Excellent mechanical properties were obtained with self-cure composites containing either CHP or a para-functionalized CHP derivative. By carefully selecting the amounts of oxidizing/reducing agents and metal catalyst, suitable working times can be obtained with all evaluated hydroperoxides. HP3, thanks to its high reactivity, is nonetheless the most promising compound.

Significance

The curing rate of self-cure composites can be adapted by modifying the structure of the hydroperoxide. In agreement with molecular modelling data, the incorporation of CHP derivatives bearing an electron withdrawing group in the para position is particularly attractive. Indeed, due to a significant reactivity enhancement, the desired properties (working time, flexural strength/modulus) can be obtained by incorporating moderate amounts of hydroperoxide/acylthiourea as well as particularly low contents of metal catalyst to the two-component dental materials.

过氧化氢结构对自固化牙科复合材料反应性和机械性能的影响。
目的:过氧化氢是双组分牙科材料的主要成分。本研究的目的是评估过氧化氢结构对自固化复合材料的反应性和机械性能的影响。方法:通过选择性催化氧化相应的对位取代积烯前体合成了过氧化氢 HP1-3,并分离出了高纯度的过氧化氢。它们通过 1H NMR 和 13C NMR 光谱进行表征。在 Sulzer Mixpac 双组分注射器中配制了 16 种自固化复合材料,它们基于氧化还原引发剂系统过氧化氢(Cumene hydroperoxide (CHP)、HP1-3 或叔戊基过氧化氢 (TAH))/可聚合硫脲 ATU1/乙酰丙酮铜(II)。每种自固化复合材料都选择了过氧化氢/ATU1 的等摩尔比。使用 RT-FTIR 光谱法评估了这些双组分材料的反应性和最终的双键转化率。试样在 37 °C 下存放 45 分钟(干燥)和在 37 °C 的水中存放 24 小时后,使用三点弯曲装置测量了弯曲强度和模量。使用振荡流变仪测量了每种自固化复合材料的工作时间:在对位上带有取电子基团(HP2:酯或 HP3:腈)的 CHP 衍生物比 CHP 反应性更高,而带有供电子基团(叔丁基,HP1)的化合物反应性较低;为更好地理解这种结构/反应性/效率关系,报告了分子建模数据。所有 CHP 衍生物的反应性都高于脂肪族过氧化氢 TAH。含有 CHP 或对官能化 CHP 衍生物的自固化复合材料具有优异的机械性能。通过仔细选择氧化剂/还原剂和金属催化剂的用量,所有评估过的氢过氧化物都能获得合适的工作时间。HP3 具有较高的反应活性,是最有前途的化合物:意义:自固化复合材料的固化速率可通过改变过氧化氢的结构来调整。与分子建模数据一致,在对位上加入带有取电子基团的 CHP 衍生物尤其具有吸引力。事实上,由于反应活性显著提高,在双组分牙科材料中加入适量的过氧化氢/乙酰硫脲以及含量特别低的金属催化剂,就能获得所需的性能(工作时间、抗弯强度/模量)。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Dental Materials
Dental Materials 工程技术-材料科学:生物材料
CiteScore
9.80
自引率
10.00%
发文量
290
审稿时长
67 days
期刊介绍: Dental Materials publishes original research, review articles, and short communications. Academy of Dental Materials members click here to register for free access to Dental Materials online. The principal aim of Dental Materials is to promote rapid communication of scientific information between academia, industry, and the dental practitioner. Original Manuscripts on clinical and laboratory research of basic and applied character which focus on the properties or performance of dental materials or the reaction of host tissues to materials are given priority publication. Other acceptable topics include application technology in clinical dentistry and dental laboratory technology. Comprehensive reviews and editorial commentaries on pertinent subjects will be considered.
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