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Insights into the Kinetics of Supramolecular Comonomer Incorporation in Water

机译:洞察超分子共聚单体掺入水中的动力学

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摘要

Multicomponent supramolecular polymers are a versatile platform to prepare functional architectures, but a few studies have been devoted to investigate their noncovalent synthesis. Here, we study supramolecular copolymerizations by examining the mechanism and time scales associated with the incorporation of new monomers in benzene-1,3,5-tricarboxamide (BTA)-based supramolecular polymers. The BTA molecules in this study all contain three tetra(ethylene glycol) chains at the periphery for water solubility but differ in their alkyl chains that feature either 10, 12 or 13 methylene units. C(10)BTA does not form ordered supramolecular assemblies, whereas C(12)BTA and C(13)BTA both form high aspect ratio supramolecular polymers. First, we illustrate that C(10)BTA can mix into the supramolecular polymers based on either C(12)BTA or C(13)BTA by comparing the temperature response of the equilibrated mixtures to the temperature response of the individual components in water. Subsequently, we mix C(10)BTA with the polymers and follow the copolymerization over time with UV spectroscopy and hydrogen/deuterium exchange mass spectrometry experiments. Interestingly, the time scales obtained in both experiments reveal significant differences in the rates of copolymerization. Coarse-grained simulations are used to study the incorporation pathway and kinetics of the C(10)BTA monomers into the different polymers. The results demonstrate that the kinetic stability of the host supramolecular polymer controls the rate at which new monomers can enter the existing supramolecular polymers.
机译:多组分超分子聚合物是一种制备功能架构的通用平台,但是致专注于研究其非价值合成的一些研究。这里,我们通过检查与苯-1,3,5-三羧酰胺(BTA)中的新单体掺入新的单体的机制和时间尺度来研究超分子共聚。本研究中的BTA分子全部含有三个(乙二醇)链在周边以进行水溶性,但在其具有10,12或13个亚甲基单元的烷基链中不同。 C(10)BTA不形成有序的超分子组件,而C(12)BTA和C(13)BTA均为高纵横比超分子聚合物。首先,我们说明C(10)BTA可以通过将平衡混合物的温度响应与水中各组分的温度响应进行比较,基于C(12)BTA或C(13)BTA基于C(12)BTA或C(13)BTA来混合到所述超分子聚合物中。随后,我们将C(10)BTA与聚合物混合并随着紫外光谱和氢气/氘交换质谱实验而后随着时间的推移遵循共聚合。有趣的是,两种实验中获得的时间尺度揭示了共聚率的显着差异。粗粒模拟用于研究C(10)BTA单体的掺入途径和动力学进入不同的聚合物。结果表明,宿主超分子聚合物的动力学稳定性控制了新单体可以进入现有的超分子聚合物的速率。

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  • 来源
    《Macromolecules》 |2019年第8期|共7页
  • 作者单位

    Eindhoven Univ Technol Inst Complex Mol Syst POB 513 NL-5600 MB Eindhoven Netherlands;

    Eindhoven Univ Technol Inst Complex Mol Syst POB 513 NL-5600 MB Eindhoven Netherlands;

    Eindhoven Univ Technol Inst Complex Mol Syst POB 513 NL-5600 MB Eindhoven Netherlands;

    Univ Appl Sci &

    Arts Southern Switzerland Dept Innovat Technol Galleria 2 Via Cantonale 2c CH-6928 Manno Switzerland;

    Eindhoven Univ Technol Inst Complex Mol Syst POB 513 NL-5600 MB Eindhoven Netherlands;

    Eindhoven Univ Technol Inst Complex Mol Syst POB 513 NL-5600 MB Eindhoven Netherlands;

    Univ Appl Sci &

    Arts Southern Switzerland Dept Innovat Technol Galleria 2 Via Cantonale 2c CH-6928 Manno Switzerland;

    Eindhoven Univ Technol Inst Complex Mol Syst POB 513 NL-5600 MB Eindhoven Netherlands;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 高分子化学(高聚物);
  • 关键词

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