Xie Qiong, Qiang Yicheng, Chen Lei, Xia Yueming, Li Weihua
State Key Laboratory of Molecular Engineering of Polymers, Key Laboratory of Computational Physical Sciences, Department of Macromolecular Science, Fudan University, Shanghai 200433, China.
ACS Macro Lett. 2020 Jul 21;9(7):980-984. doi: 10.1021/acsmacrolett.0c00313. Epub 2020 Jun 17.
The self-assembly of amphiphilic macromolecules into various mesocrystals has attracted abiding interest. Although many interesting mesocrystals have been achieved, mesocrystals of a low coordination number (CN) such as simple cubic are rarely reported. Here we purposely design an AB-type multiblock copolymer to target exotic spherical phases of low CNs. Self-consistent field theory reveals that two sophisticated mechanisms are realized in the copolymer, that is, stretched bridging block and released packing frustration, synergistically leading to the formation of three spherical phases with extremely low CNs, including the simple cubic spheres (CN = 6), the cubic diamond spheres (CN = 4), and normally aligned hexagonal-packing spheres (6 < CN < 8) in a considerable parameter region. Moreover, we demonstrate that these exotic phases are hard to be stabilized by either of the two mechanisms individually.
两亲性大分子自组装成各种介晶引起了持久的兴趣。尽管已经获得了许多有趣的介晶,但低配位数(CN)的介晶,如简单立方介晶,却鲜有报道。在此,我们特意设计了一种AB型多嵌段共聚物,以靶向具有低配位数的奇异球形相。自洽场理论表明,该共聚物实现了两种复杂的机制,即拉伸桥连嵌段和释放堆积受挫,它们协同作用导致在相当大的参数区域内形成三种具有极低配位数的球形相,包括简单立方球体(CN = 6)、立方金刚石球体(CN = 4)和正常排列的六方堆积球体(6 < CN < 8)。此外,我们证明,这两种机制单独作用时都难以使这些奇异相稳定。