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Tuning the Length of Cooperative Supramolecular Polymers under Thermodynamic Control

机译:在热力学控制下调整超分子聚合物的长度

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In the field of supramolecular (co)polymerizations, the ability to predict and control the composition and length of the supramolecular (co)polymers is a topic of great interest. In this work, we elucidate the mechanism that controls the polymer length in a two-component cooperative supramolecular polymerization and unveil the role of the second component in the system. We focus on the supramolecular copolymerization between two derivatives of benzene-1,3,5-tricarboxamide (BTA) monomers: a-BTA and Nle-BTA. As a single component, a-BTA cooperatively polymerizes into long supramolecular polymers, whereas Nle-BTA only forms dimers. By mixing a-BTA and Nle-BTA in different ratios, two component systems are obtained, which are analyzed in-depth by combining spectroscopy and light-scattering techniques with theoretical modeling. The results show that the length of the supramolecular polymers formed by a-BTA is controlled by competitive sequestration of a-BTA monomers by Nle-BTA, while the obvious alternative Nle-BTA acts as a chain-capper is not operative. This sequestration of a-BTA leads to short, stable species coexisting with long cooperative aggregates. The analysis of the experimental data by theoretical modeling elucidates the thermodynamic parameters of the copolymerization, the distributions of the various species, and the composition and length of the supramolecular polymers at various mixing ratios of a-BTA and Nle-BTA. Moreover, the model was used to generalize our results and to predict the impact of adding a chain-capper or a competitor on the length of the cooperative supramolecular polymers under thermodynamic control. Overall, this work unveils comprehensive guidelines to master the nature of supramolecular (co)polymers and brings the field one step closer to applications.
机译:在超分子(共)聚合领域中,预测和控制超分子(共)聚合物的组成和长度的能力是非常感兴趣的主题。在这项工作中,我们阐明了在两组分协同超分子聚合中控制聚合物长度的机理,并揭示了第二组分在系统中的作用。我们专注于苯-1,3,5-三甲酰胺(BTA)单体的两个衍生物之间的超分子共聚:a-BTA和Nle-BTA。作为单个组分,a-BTA协同聚合成长的超分子聚合物,而Nle-BTA仅形成二聚体。通过以不同比例混合a-BTA和Nle-BTA,获得两个组分系统,并将光谱学和光散射技术与理论模型结合起来进行深入分析。结果表明,由a-BTA形成的超分子聚合物的长度受Nle-BTA竞争性隔离a-BTA单体的控制,而明显的替代性Nle-BTA充当链封端分子则不起作用。对a-BTA的隔离会导致短而稳定的物种与长期合作的聚集体共存。通过理论模型对实验数据进行分析,阐明了在α-BTA和Nle-BTA的各种混合比例下,共聚的热力学参数,各种物质的分布以及超分子聚合物的组成和长度。此外,该模型用于概括我们的结果,并预测在热力学控制下添加链封端或竞争者对合作性超分子聚合物长度的影响。总的来说,这项工作揭示了掌握超分子(共)聚合物性质的全面指导方针,并使该领域离应用更近了一步。

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