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用分子动力学和图论方法对己二醇二丙烯酸酯(HDDA)的自由基聚合反应进行建模。

Modeling the free-radical polymerization of hexanediol diacrylate (HDDA): a molecular dynamics and graph theory approach.

机构信息

Van't Hoff Institute for Molecular Sciences, University of Amsterdam, Science Park 904, 1098 XH Amsterdam, The Netherlands.

出版信息

Soft Matter. 2018 May 2;14(17):3404-3414. doi: 10.1039/c8sm00451j.

Abstract

In the printing, coating and ink industries, photocurable systems are becoming increasingly popular and multi-functional acrylates are one of the most commonly used monomers due to their high reactivity (fast curing). In this paper, we use molecular dynamics and graph theory tools to investigate the thermo-mechanical properties and topology of hexanediol diacrylate (HDDA) polymer networks. The gel point was determined as the point where a giant component was formed. For the conditions of our simulations, we found the gel point to be around 0.18 bond conversion. A detailed analysis of the network topology showed, unexpectedly, that the flexibility of the HDDA molecules plays an important role in increasing the conversion of double bonds, while delaying the gel point. This is due to a back-biting type of reaction mechanism that promotes the formation of small cycles. The glass transition temperature for several degrees of curing was obtained from the change in the thermal expansion coefficient. For a bond conversion close to experimental values we obtained a glass transition temperature around 400 K. For the same bond conversion we estimate a Young's modulus of 3 GPa. Both of these values are in good agreement with experiments.

摘要

在印刷、涂布和油墨行业中,光固化系统越来越受欢迎,而多功能丙烯酸酯由于其高反应性(快速固化)而成为最常用的单体之一。在本文中,我们使用分子动力学和图论工具研究了己二醇二丙烯酸酯(HDDA)聚合物网络的热机械性能和拓扑结构。凝胶点被确定为形成巨组分的点。对于我们模拟的条件,我们发现凝胶点约为 0.18 键转化率。对网络拓扑结构的详细分析出人意料地表明,HDDA 分子的灵活性在增加双键转化率、延迟凝胶点方面起着重要作用。这是由于反咬型反应机制促进了小环的形成。玻璃化转变温度是通过热膨胀系数的变化获得的。对于几个固化度,我们得到了大约 400 K 的玻璃化转变温度。对于相同的键转化率,我们估计杨氏模量为 3 GPa。这两个值都与实验结果非常吻合。

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