Kan Di, He Xuehao
Department of Chemistry, School of Science, Tianjin University, 300072 Tianjin, China.
Soft Matter. 2016 May 11;12(19):4449-56. doi: 10.1039/c5sm03154k.
Electric fields can induce the orientation of the phase interfaces of block copolymers and provide a potential method to tune polymer phase structures for nanomaterial manufacture. In this work, we applied self-consistent field theory to study the self-assembly of a diblock copolymer confined between two parallel neutral substrates on which a set of electrodes was imposed to form a patterned electric field. The results showed that an alternatively distributed electric field can induce the formation of a parallel lamellar phase structure, which exists stably only in the system with selective substrates. The phase structure was proved to be sensitive to the characteristics of the electric field distribution, such as the strength of the electric field, the size and position of the electrodes, and the corresponding phase diagram was calculated in detail. The transition pathway of the phase structure from the perpendicular layered phase to the parallel layered phase was further analysed using the minimum energy path method. It is shown that the path and the active energy barrier of the phase transition depend on the electric field strength. Compound electric field patterns that can be designed to control the formation of novel and complex microphase structures were also examined.
电场可以诱导嵌段共聚物相界面的取向,并为调整用于纳米材料制造的聚合物相结构提供一种潜在方法。在这项工作中,我们应用自洽场理论研究了一种二嵌段共聚物在两个平行中性基板之间的自组装行为,在这两个基板上施加了一组电极以形成图案化电场。结果表明,交替分布的电场可以诱导形成平行层状相结构,该结构仅在具有选择性基板的系统中稳定存在。实验证明,相结构对电场分布特性敏感,如电场强度、电极尺寸和位置等,并详细计算了相应的相图。利用最小能量路径方法进一步分析了相结构从垂直层状相到平行层状相的转变途径。结果表明,相变的路径和活化能垒取决于电场强度。还研究了可设计用于控制新型和复杂微相结构形成的复合电场图案。