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Influence of stoichiometry on the glass transition and bond exchange reactions in epoxy thermoset polymers

机译:化学计量对环氧热固性聚合物中玻璃化转变和键交换反应的影响

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摘要

Thermally malleable polymers which undergo covalent bond exchange reactions (BERs) have been shown to be able to rearrange their network topology at high temperatures without impairing the network integrity. At low temperatures, the BERs are so sluggish that the materials behave like traditional thermosetting polymers. In this paper, we demonstrated that the temperature dependent BER rate could be tuned by adjusting the stoichiometry of monomers. As the ratio of hard segments in the epoxy thermoset network is increased, the material's glass transition temperature (T-g) is increased, with a corresponding increase in the temperature required to achieve a given stress relaxation rate. The material stress relaxation behavior was studied from both a theoretical and experimental point of view. Based on the kinetics of BERs, we derived the detailed expression of stress relaxation time, which reveals an Arrhenius type dependency of material relaxation behavior on the applied temperature. Subsequently, from the experimental stress relaxation curves, we determined the energy barrier for the BERs in different networks. With the T-g being elevated from 30.3 degrees C to 63.0 degrees C, the BER energy barrier is linearly increased from 68.2 kJ mol(-1) to 97.3 kJ mol(-1). Such a correlation between these two thermomechanical behaviors provides an additional design parameter (beyond catalyst choice) which can aid in achieving highly tunable service conditions for practical engineering applications of thermally malleable thermosets.
机译:已经证明,经历共价键交换反应(BER)的热延展性聚合物能够在高温下重新排列其网络拓扑结构,而不会损害网络完整性。在低温下,BER如此缓慢,以至于材料的行为类似于传统的热固性聚合物。在本文中,我们证明了可以通过调节单体的化学计量来调节与温度相关的BER速率。随着环氧热固性网络中硬链段比例的增加,材料的玻璃化转变温度(T-g)也随之增加,同时达到给定应力松弛率所需的温度也相应增加。从理论和实验的角度研究了材料的应力松弛行为。基于BER的动力学,我们得出了应力弛豫时间的详细表达式,它揭示了材料弛豫行为对所施加温度的Arrhenius类型依赖性。随后,根据实验应力松弛曲线,我们确定了不同网络中BER的能垒。随着T-g从30.3摄氏度升高到63.0摄氏度,BER能量垒从68.2 kJ mol(-1)线性增加到97.3 kJ mol(-1)。这两个热机械行为之间的这种相关关系提供了额外的设计参数(超出了催化剂的选择范围),可以帮助实现可延展性热固性塑料的实际工程应用中的高度可调的使用条件。

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