Jiangsu Key Laboratory of Environmentally Friendly Polymeric Materials, Jiangsu Collaborative Innovation Center of Photovolatic Science and Engineering, National Experimental Demonstration Center for Materials Science and Engineering, School of Materials Science and Engineering, Changzhou University, Changzhou 213164, China.
Molecules. 2023 Jun 29;28(13):5113. doi: 10.3390/molecules28135113.
The effective control over the vesicle formation pathways is vital for tuning its function. Recently, a liquid-liquid phase-separated intermediate (LLPS) is observed before a vesicular structure during the solvent exchange self-assembly of block copolymers. Though the understanding of polymer structures and chemical compositions on the competition between LLPS and micellization has made some progress, little is known about the role of cosolvent on it. In this study, the influence of cosolvent on the vesicle formation pathways is investigated by using dissipative particle dynamics. The results show that the range of water fraction within which the LLPS is favored will be highly dependent on the affinity difference of cosolvent to water and to polymer repeat units. The change of the cosolvent-water interaction and the water fraction impact the distribution of cosolvent in the polymer domain, the miscibility between the components in the system as well as the chain conformations, which finally induce different self-assembly behaviors. Our findings would be helpful for understanding the LLPS and controlling the morphologies of diblock polymers in solutions for further applications.
有效控制囊泡形成途径对于调节其功能至关重要。最近,在嵌段共聚物的溶剂交换自组装过程中,在囊泡结构形成之前观察到了液-液相分离的中间相(LLPS)。尽管对聚合物结构和化学组成在 LLPS 和胶束化之间的竞争的理解已经取得了一些进展,但对于共溶剂的作用知之甚少。在这项研究中,通过耗散粒子动力学研究了共溶剂对囊泡形成途径的影响。结果表明,有利于 LLPS 的水分数范围将高度依赖于共溶剂对水和聚合物重复单元的亲和性差异。共溶剂-水相互作用和水分数的变化会影响共溶剂在聚合物域中的分布、系统中各组分的混溶性以及链构象,最终导致不同的自组装行为。我们的发现有助于理解 LLPS,并控制嵌段聚合物在溶液中的形态,以进一步应用。