Key Lab for Material Chemistry of Energy Conversion and Storage, Ministry of Education, and Hubei Key Lab of Material Chemistry and Service Failure, School of Chemistry and Chemical Engineering , Huazhong University of Science and Technology (HUST) , Wuhan 430074 , P. R. China.
Sino-U.S. Joint Research Center on Liquid Crystal Chemistry and Physics , HUST and CUB.
Langmuir. 2018 Sep 18;34(37):10955-10963. doi: 10.1021/acs.langmuir.8b01056. Epub 2018 Sep 5.
Liquid crystal (LC) ordering and phase transition behavior under confined conditions have attracted extensive attention and enabled many applications. However, the ordering and phase transition behavior of LCs in submicrometer capsules have seldom been studied, primarily due to the lack of proper capsulizing and visualization approaches to such small LC microcapsules. Herein, we achieve submicrometer LC capsules with the sizes down to 100 nm by using emulsion-based interfacial sol-gel reaction. The behavior of LCs under the submicrometer confinement conditions is investigated while the sizes and chemical composition of the microcapsule shell surface are tuned in a controllable way. The phase transition temperatures of LCs in the submicrometer capsules shift from those of bulk LCs due to the surface-induced ordering of LCs under the strong confinement conditions, which causes formation of topological defects and alters the order parameter. Using nonlinear optical imaging technology, we explore the structures of director field of LCs that arise as a result of the competition between the surface boundary conditions and LC elasticity. The results show that the nanoscale encapsulation can significantly influence the structural configurations of the director and phase transitions of LCs under various confinement conditions.
液晶(LC)在受限条件下的有序化和相转变行为引起了广泛关注,并催生了许多应用。然而,亚微米胶囊中 LC 的有序化和相转变行为很少被研究,主要是因为缺乏适当的胶囊化和可视化方法来处理如此小的 LC 微胶囊。在此,我们通过乳液基界面溶胶-凝胶反应实现了尺寸降至 100nm 的亚微米 LC 胶囊。在可控的方式下,我们调节微胶囊壳表面的尺寸和化学成分,研究 LC 在亚微米受限条件下的行为。由于在强受限条件下 LC 的表面诱导有序化,LC 在亚微米胶囊中的相变温度会偏离本体 LC 的相变温度,这会导致拓扑缺陷的形成并改变有序参数。通过非线性光学成像技术,我们探索了由于表面边界条件和 LC 弹性之间的竞争而产生的 LC 指向矢场的结构。结果表明,纳米级封装可以显著影响不同受限条件下 LC 的结构配置和相转变。