交联超分子双网络中聚合物链弛豫的约束效应

Jasper Feng, J. Allgaier, M. Kruteva, S. Förster, W. Pyckhout-Hintzen
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引用次数: 0

摘要

由于超分子官能团固有的重缔合能力,含有瞬态物理和永久化学交联的聚合物网络表现出独特的机械性能。与超分子凝胶类似,这些网络可以控制存储能量的释放,并在实际应用中延长聚合物网络的使用寿命。在这项研究中,我们研究了随机放置胸腺嘧啶(Thy)侧基功能化的聚环氧丁烯(PBO)长链网络的流变学、介电光谱、应力-应变行为和动态力学分析。利用DAT - thy三氢键的杂互补作用,将该矩阵与短的无纠缠线性1,3,5-二氨基三嗪(DAT)首尾修饰的PBO链按比例混合形成瞬时网络。该暂态聚合物网络通过巯基点击反应进一步交联成双网络,形成静态共价键。在PBO中,PBO基质和da - thy官能团的相似极性保证了分子链运动不受偏析的影响,从而形成了均匀的聚合物相,没有微相分离的官能团域。介质弛豫光谱与流变学相结合,量化了相互连接的聚合物的弛豫过程和熔体中DAT-Thy键相互作用的强度。结果表明,由于氢和永久键的贡献,弛豫模量有两个明显的平台。在双网络的情况下,由于物理交联阻止了长链的运动,氢键的寿命延长,活化能更高。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Constraining effects on polymer chain relaxation in crosslinked supramolecular dual networks
Polymer networks containing transient physical and permanent chemical cross-links exhibit unique mechanical properties due to the intrinsic reassociating ability of supramolecular functional groups. Similar to supramolecular gels, these networks allow the controlled release of stored energy and can extend the life of polymer networks in practical applications. In this study, we investigated the rheology, dielectric spectroscopy, stress–strain behavior, and dynamic mechanical analysis of networks based on long polybutylene oxide (PBO) chains functionalized with randomly placed thymine (Thy) side groups. A transient network was formed by proportionally mixing this matrix with short non-entangled linear 1,3,5-diaminotriazine (DAT) head–tail modified PBO chains, exploiting the hetero-complementarity of the DAT–Thy triple hydrogen bond. This transient polymer network was further cross-linked to a dual network via a thiol-ene click reaction to form static covalent bonds. In PBO, the similar polarity of the PBO matrix and the DAT–Thy functional groups ensures that the molecular chain motion is not affected by segregation, resulting in a homogeneous polymer phase without microphase-separated functional group domains. Dielectric relaxation spectroscopy was combined with rheology to quantify the relaxation processes of the interconnected polymers and the strength of the DAT–Thy bonding interactions in the melt. The results showed two distinct plateaux in the relaxation modulus due to contributions from hydrogen and permanent bonds. In the case of the dual network, the lifetime of the hydrogen bond was prolonged and higher activation energy was observed due to the physical cross-link preventing the movement of the long chain.
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