Lehrstuhl für Physikalische Chemie II, Universität Bayreuth, Germany.
Langmuir. 2005 Dec 6;21(25):11974-80. doi: 10.1021/la051346w.
We investigate the mechanism of microdomain orientation in concentrated block copolymer solutions exposed to a dc electric field by in situ synchrotron small-angle X-ray scattering (SAXS). As a model system, we use concentrated solutions of a lamellar polystyrene-b-polyisoprene block copolymer in toluene. We find that both the microscopic mechanism of reorientation and the kinetics of the process strongly depend on the initial degree of order in the system. In a highly ordered lamellar system with the lamellae being aligned perpendicular to the electric field vector, only nucleation and growth of domains is possible as a pathway to reorientation and the process proceeds rather slowly. In less ordered samples, grain rotation becomes possible as an alternative pathway, and the process proceeds considerably faster. The interpretation of our finding is strongly corroborated by dynamic self-consistent field simulations.
我们通过同步辐射小角 X 射线散射(SAXS)原位研究了在直流电场中暴露的浓嵌段共聚物溶液中微区取向的机制。作为模型体系,我们使用聚苯乙烯-b-聚异戊二烯嵌段共聚物在甲苯中的浓溶液。我们发现,重新取向的微观机制和过程的动力学都强烈依赖于体系的初始有序度。在具有垂直于电场矢量排列的层状结构的高度有序体系中,只有通过成核和畴生长才能实现重新取向,并且该过程进展相当缓慢。在较无序的样品中,晶粒旋转成为可能的替代途径,并且该过程进展得相当快。我们的发现得到了动态自洽场模拟的有力支持。