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Linking Molecular Behavior to Macroscopic Properties in Ideal Dynamic Covalent Networks

机译:将分子行为与理想动态共价网络中的宏观特性联系起来

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摘要

Dynamic covalent networks (DCvNs) are increasingly used in advanced materials design with applications ranging from recyclable thermosets to self-healing hydrogels. However, the relationship between the underlying chemistry at the junctions of DCvNs and their macroscopic properties is still not fully understood. In this work, we constructed a robust framework to predict how complex network behavior in DCvNs emerges from the chemical landscape of the dynamic chemistry at the junction. Ideal dynamic covalent boronic ester-based hydrogels were used as model DCvNs. We developed physical models that describe how viscoelastic properties, as measured by shear rheometry, are linked to the molecular behavior of the dynamic junction, quantified via fluorescence and NMR spectroscopy and DFT calculations. Additionally, shear rheometry was combined with Transition State Theory to quantify the kinetics and thermodynamics of network rearrangements, enabling a mechanistic understanding including preferred reaction pathways for dynamic covalent chemistries. We applied this approach to corroborate the "loose-bolt" postulate for the reaction mechanism in Wulff-type boronic acids. These findings, grounded in molecular principles, advance our understanding and rational design of dynamic polymer networks, improving our ability to predict, design, and leverage their unique properties for future applications.
机译:动态共价网络(DCVN)越来越多地用于高级材料设计,其应用范围从可回收热固性传递到自我愈合水凝胶。然而,仍然不完全理解DCVN和宏观性质的相关化学与其宏观性质之间的关系。在这项工作中,我们构建了一种强大的框架,以预测DCVNS中的网络行为如何从交叉处的动态化学的化学景观中出现。使用理想的动态共价硼酸酯基水凝胶作为模型DCVN。我们开发了描述粘弹性性质的物理模型,如剪切流程测量的粘弹性,与动态结的分子行为联系在于通过荧光和NMR光谱和DFT计算量化。另外,剪切流变学与过渡状态理论相结合,以量化网络重排的动力学和热力学,从而实现机械理解,包括用于动态共价化学的优选反应途径。我们应用这种方法来证实“松散螺栓”假设用于武沫型硼酸的反应机制。这些发现,采用分子原则,推进了我们的谅解和合理设计动态聚合物网络,提高了我们预测,设计和利用其独特性能的能力,以满足未来的应用。

著录项

  • 来源
    《Journal of the American Chemical Society》 |2020年第36期|15371-15385|共15页
  • 作者单位

    Macromolecular Engineering Laboratory and Department of Mechanical and Process Engineering ETH Zurich 8092 Zurich Switzerland;

    Macromolecular Engineering Laboratory and Department of Mechanical and Process Engineering ETH Zurich 8092 Zurich Switzerland;

    Macromolecular Engineering Laboratory and Department of Mechanical and Process Engineering ETH Zurich 8092 Zurich Switzerland;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-18 22:16:52

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