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CONFORMATION AND PHYSICAL GELATION OF TELECHELIC POLYELECTROLYTES IN SOLUTION

机译:溶液中高分子电解质的构象和物理凝胶化

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A special kind of associating polyelectrolytes (AP), telechelic polyelectrolytes (TP), composed of a flexible linear polyelectrolyte and short hydrophobic blocks at both ends, are investigated by means of Monte Carlo simulations in aqueous media. These novel materials will ionize into polyions and their counterions when dissolved in water> whose properties strongly depend on pH and salt addition. The PH-tunable property makes its wider applications in drug delivering and targeting.1-3 The interplay between hydrophobic attraction and the long range electrostatic interaction as well as the counterion distribution exerts a major influence on the chain conformations(two basic conformations: loop and non-loop), association behavior (loop association contributes to loop conformation; free, dangling and bridge chains contribute to non-loop conformations) and the forming of clusters. At a concentration close to the overlapping concentration ?, the clusters are found to be further connected by bridge chains under strong hydrophobic interaction, forming a 3D network(See Figure l(a)). Percolation model is used to probe the gelation process. Figure l(b) plots the fraction of corresponding chain association types during this sol-gel transition process. Increasing hydrophobic interaction arouses a maximum of dangling fraction due to the completion of the two transitions, the free into dangling type and dangling into bridge and loop types. In addition, the loop fraction shows no significant change after ε>7 due to the completion of hydrophobic attraction and electrostatic repulsion. The effect of counterion condensation4'5 on chain conformations and the forming of physical gel is also presented. Increasing Coulomb interaction strength is basically in favor of the formation of gel network(See Figure 2(a)). As it is shown in Figure 2(b), with increasing Coulomb interaction strength, firstly chains tend to extend and then collapse into loop conformation due to the screening of the counterion condensation layer. However, bridge chains under strong hydrophobic interactions are more stable than those under small e. In a word, compared with neutral telechelic polymers,6 the gelation of telechelic polyelectrolytes is more complicated.
机译:通过在水性介质中的蒙特卡罗模拟研究了一种特殊的缔合聚电解质(AP),遥螯聚电解质(TP),其由柔性线性聚电解质和两端的短疏水嵌段组成。当溶解于水中时,这些新型材料将离子化成聚离子及其抗衡离子,而其性质在很大程度上取决于pH值和盐的添加。 PH可调性使其在药物递送和靶向中具有更广泛的应用。1-3疏水吸引与远程静电相互作用以及抗衡离子分布之间的相互作用对链构象(两个基本构象:环和非环),缔合行为(环缔合有助于环构象;自由链,悬链和桥链有助于非环构象)和簇的形成。在接近重叠浓度的浓度下,发现簇在强疏水相互作用下通过桥链进一步连接,形成3D网络(见图1(a))。渗滤模型用于探测凝胶化过程。图l(b)绘制了在此溶胶-凝胶转变过程中相应链缔合类型的分数。疏水相互作用的增加由于两个转变的完成而引起最大的悬空分数,这两个转变是自由型变成悬空型而悬空成桥和环型。此外,由于疏水吸引和静电排斥的完成,环分数在ε> 7之后无明显变化。还提出了抗衡离子缩合4'5对链构象和物理凝胶形成的影响。库仑相互作用强度的增加基本上有利于凝胶网络的形成(见图2(a))。如图2(b)所示,随着库仑相互作用强度的增加,首先由于抗衡离子缩合层的筛选,链倾向于延伸,然后塌陷成环构象。但是,强疏水作用下的桥链比小e下的桥链更稳定。总之,与中性远螯聚合物相比,远螯聚电解质的凝胶化更为复杂。

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