Campos-Villalobos Gerardo, Siperstein Flor R, Charles Arvin, Patti Alessandro
Department of Chemical Engineering and Analytical Science, University of Manchester, Sackville Street, Manchester M13 9PL, UK.
Department of Chemical Engineering and Analytical Science, University of Manchester, Sackville Street, Manchester M13 9PL, UK.
J Colloid Interface Sci. 2020 Jul 15;572:133-140. doi: 10.1016/j.jcis.2020.03.067. Epub 2020 Mar 24.
Poly(ethylene oxide)-b-poly(butylmethacrylate) (PEO-b-PBMA) copolymers have recently been identified as excellent building blocks for the synthesis of hierarchical nanoporous materials. Nevertheless, while experiments have unveiled their potential to form bicontinuous phases and vesicles, a general picture of their phase and aggregation behavior is still missing. By performing Molecular Dynamics simulations, we here apply our recent coarse-grained model of PEO-b-PBMA to investigate its self-assembly in water and tetrahydrofuran (THF) and unveil the occurrence of a wide spectrum of mesophases. In particular, we find that the morphological phase diagram of this ternary system incorporates bicontinuous and lamellar phases at high copolymer concentrations, and finite-size aggregates, such as dispersed sheets or disk-like aggregates, spherical vesicles and rod-like vesicles, at low copolymer concentrations. The morphology of these mesophases can be controlled by tuning the THF/water relative content, which has a striking effect on the kinetics of self-assembly as well as on the resulting equilibrium structures. Our results disclose the fascinating potential of PEO-b-PBMA copolymers for the templated synthesis of nanostructured materials and offer a guideline to fine-tune their properties by accurately selecting the THF/water ratio.
聚环氧乙烷-聚甲基丙烯酸丁酯(PEO-b-PBMA)共聚物最近被认为是合成分级纳米多孔材料的优良结构单元。然而,尽管实验揭示了它们形成双连续相和囊泡的潜力,但它们的相行为和聚集行为的全貌仍不清楚。通过进行分子动力学模拟,我们应用最近开发的PEO-b-PBMA粗粒化模型,研究其在水和四氢呋喃(THF)中的自组装行为,并揭示了多种中间相的存在。具体而言,我们发现该三元体系的形态相图在高共聚物浓度下包含双连续相和层状相,在低共聚物浓度下包含有限尺寸的聚集体,如分散的片层或盘状聚集体、球形囊泡和棒状囊泡。这些中间相的形态可以通过调节THF/水的相对含量来控制,这对自组装动力学以及最终的平衡结构有显著影响。我们的结果揭示了PEO-b-PBMA共聚物在纳米结构材料模板合成方面的巨大潜力,并为通过精确选择THF/水比例来微调其性能提供了指导。