论文标题

可逆交联聚合物中的凝胶形成

Gel Formation in Reversibly Cross-Linking Polymers

论文作者

Formanek, Maud, Rovigatti, Lorenzo, Zaccarelli, Emanuela, Sciortino, Francesco, Moreno, Angel J.

论文摘要

通过Langevin动力学模拟,我们研究了溶液中随机功能化聚合物的凝胶形成,并具有形成分子内和分子间可逆键的能力。在高度稀释的条件下,这些聚合物形成软纳米对象(所谓的单链纳米颗粒,SCNPS),这是由反应性功能基的纯粹分子交联引起的。在这里,我们表明,有限浓度下的分子内和分子间键之间的竞争受各种熵贡献的微妙平衡,并导致密度依赖性有效价。系统跨越的网络以相对较低的单体密度形成,其稳定性仅由每个链中的少数分子间连接介导。分子间键的形成还可以诱导聚合物大小对长键寿命的密度的非单调依赖性。同时,渗透簇中的聚合物采用了避开自避免链的分子内结构的特征,这与在纯粹的拓扑相互作用(无分子键)的拥挤溶液中不可逆的SCNP的分形球状行为形成了强烈对比。最后,我们研究了系统的动力学,该动力显示了可逆凝胶形成系统期望的特征。在渗透簇的重组动力学中出现了一个有趣的行为。松弛主要是由长距离的扩散,通过断裂和形成的链条的扩散,这些链不会留下渗透簇的链。关于瞬时自由的少数连锁店,他们花费的时间直到将其重新安置到集群中仅由纽带强度支配。

By means of Langevin dynamics simulations, we investigate the gel formation of randomly functionalized polymers in solution, with the ability to form both intra- and intermolecular reversible bonds. Under highly dilute conditions, these polymers form soft nano-objects (so-called single-chain nanoparticles, SCNPs), resulting from the purely intramolecular cross-linking of the reactive functional groups. Here we show that the competition between intra- and intermolecular bonds at finite concentration is governed by a delicate balance of various entropic contributions and leads to a density dependent effective valence. System-spanning networks are formed at relatively low monomer densities and their stability is mediated by just a small number of intermolecular connections per chain. The formation of intermolecular bonds furthermore can induce a non-monotonic dependence of the polymer size on the density for long bond lifetimes. Concomitantly, the polymers in the percolating cluster adopt an intramolecular structure characteristic for self-avoiding chains, which constitutes a strong contrast to the fractal globular behavior of irreversible SCNPs in crowded solutions with purely topological interactions (no intermolecular bonds). Finally, we study the dynamics of the system, which displays signatures expected for reversible gel-forming systems. An interesting behavior emerges in the reorganization dynamics of the percolating cluster. The relaxation is mostly mediated by the diffusion over long distances, through breaking and formation of bonds, of chains that do not leave the percolating cluster. Regarding the few chains that are transiently free, the time they spend until they reattach to the cluster is solely governed by the bond strength.

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