Langmuir. 2018 Sep 4;34(35):10293-10301. doi: 10.1021/acs.langmuir.8b02192. Epub 2018 Aug 22.
We report a blending mechanism of polystyrene- b-poly(ethylene oxide) (PS- b-PEO) and PS homopolymer (homoPS) at the air/water interface. Our blending mechanism is completely different from the well-known "wet-dry brush theory" for bulk blends; regardless of the size of homoPS, the domain size increased and the morphology changed without macrophase separation, whereas the homoPS of small molecular weight (MW) leads to a transition after blending into the block copolymer domains, and the large MW homoPS is phase-separated in bulk. The difference in blending mechanism at the interface is attributed to adsorption kinetics at a water/spreading solvent interface. Upon spreading, PS- b-PEO is rapidly adsorbed to the water/spreading solvent interface and forms domain first, and then homoPS accumulates on them as the solvent completely evaporates. On the basis of our proposed mechanism, we demonstrate that rapid PS- b-PEO adsorption is crucial to determine the final morphology of the blends. We additionally found that spreading preformed self-assemblies of the blends slowed down the adsorption, causing them to behave similar to bulk blends, following the "wet-dry brush theory". This new mechanism provides useful information for various block copolymer-homopolymer blending systems with large fluid/fluid interfaces such as emulsions and foams.
我们报告了聚苯乙烯- b-聚(氧化乙烯)(PS- b-PEO)和 PS 均聚物(homoPS)在空气/水界面的混合机理。我们的混合机理与用于体相共混物的著名“干湿刷理论”完全不同;无论 homoPS 的大小如何,其尺寸都增加且形貌发生变化,而没有出现宏观相分离,而小分子量(MW)的 homoPS 在共混后会转变成嵌段共聚物域,而大 MW 的 homoPS 在体相则发生相分离。界面处混合机理的差异归因于水/展开溶剂界面处的吸附动力学。在展开过程中,PS- b-PEO 迅速吸附到水/展开溶剂界面并首先形成域,然后随着溶剂完全蒸发, homoPS 在其上积累。基于我们提出的机理,我们证明了快速 PS- b-PEO 吸附对于确定共混物的最终形貌至关重要。我们还发现,展开共混物的预形成自组装会减慢吸附,使它们的行为类似于体相共混物,遵循“干湿刷理论”。这种新的机理为具有大流体/流体界面的各种嵌段共聚物-均聚物共混体系(如乳液和泡沫)提供了有用的信息。