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首页> 外文期刊>The Journal of Chemical Physics >An interplay of excluded-volume and polymer-(co)solvent attractive interactions regulates polymer collapse in mixed solvents
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An interplay of excluded-volume and polymer-(co)solvent attractive interactions regulates polymer collapse in mixed solvents

机译:排除体积和聚合物 - (共聚合物 - (共)溶剂的相互作用调节混合溶剂中的聚合物塌陷

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Cosolvent effects on the coil-globule transitions in aqueous polymer solutions are not well understood, especially in the case of amphiphilic cosolvents that preferentially adsorb on the polymer and lead to both polymer swelling and collapse. Although a predominant focus in the literature has been placed on the role of polymer-cosolvent attractive interactions, our recent work has shown that excluded-volume interactions (repulsive interactions) can drive both preferential adsorption of the cosolvent and polymer collapse via a surfactant-like mechanism. Here, we further study the role of polymer-(co)solvent attractive interactions in two kinds of polymer solutions, namely, good solvent (water)-good cosolvent (alcohol) (GSGC) and poor solvent-good cosolvent (PSGC) solutions, both of which exhibit preferential adsorption of the cosolvent and a non-monotonic change in the polymer radius of gyration with the addition of the cosolvent. Interestingly, at low concentrations, the polymer-(co)solvent energetic interactions oppose polymer collapse in the GSGC solutions and contrarily support polymer collapse in the PSGC solutions, indicating the importance of the underlying polymer chemistry. Even though the alcohol molecules are preferentially adsorbed on the polymer, the trends of the energetic interactions at low cosolvent concentrations are dominated by the polymer-water energetic interactions in both the cases. Therefore, polymer-(co)solvent energetic interactions can either reinforce or compensate the surfactant-like mechanism, and it is this interplay that drives coil-to-globule transitions in polymer solutions. These results have implications for rationalizing the cononsolvency transitions in real systems such as polyacrylamides in aqueous alcohol solutions where the understanding of microscopic driving forces is still debatable.
机译:共溶剂对聚合物水溶液中线圈-球转变的影响尚不清楚,尤其是在两亲性共溶剂优先吸附在聚合物上并导致聚合物膨胀和崩塌的情况下。虽然文献中主要关注的是聚合物-共溶剂吸引相互作用的作用,但我们最近的研究表明,排斥体积相互作用(排斥相互作用)可以通过表面活性剂样机制驱动共溶剂的优先吸附和聚合物的崩塌。在这里,我们进一步研究了聚合物-(co)溶剂吸引相互作用在两种聚合物溶液中的作用,即良好溶剂(水)-良好共溶剂(乙醇)(GSGC)和不良溶剂-良好共溶剂(PSGC)溶液,这两种溶液都表现出对共溶剂的优先吸附,并且随着共溶剂的加入,聚合物的旋转半径发生非单调变化。有趣的是,在低浓度下,聚合物-(co)溶剂的高能相互作用反对GSGC溶液中的聚合物崩塌,相反支持PSGC溶液中的聚合物崩塌,这表明潜在聚合物化学的重要性。尽管醇分子优先吸附在聚合物上,但在这两种情况下,低共溶剂浓度下的能量相互作用趋势主要由聚合物-水的能量相互作用决定。因此,聚合物-(共)溶剂高能相互作用可以加强或补偿表面活性剂样机制,正是这种相互作用推动了聚合物溶液中线圈到球体的转变。这些结果对于合理化实际体系中的共溶剂转变具有重要意义,例如在乙醇水溶液中的聚丙烯酰胺,其中对微观驱动力的理解仍有争议。

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