Zhang Kaixing, Wu Yanggui, Chen Senbin, Zhu Jintao
Key Laboratory of Materials Chemistry for Energy Conversion and Storage, Ministry of Education (HUST), School of Chemistry and Chemical Engineering, Huazhong University of Science and Technology (HUST), 430074, Wuhan, China.
Angew Chem Int Ed Engl. 2024 Oct 24;63(44):e202408730. doi: 10.1002/anie.202408730. Epub 2024 Sep 24.
Achieving structural reconfiguration of supramolecular bottlebrush block copolymers toward topological engineering is of particular interest but challenging. Here, we address the creation of supramolecular architectures to discover how assembled topology influences the structured aggregates, combining hydrogen-bonded (H-bonded) bottlebrush block copolymers and electrostatic interaction induced polymer/inorganic eutectics. We first design H-bonding linear-brush block copolymer P(NBDAP-co-NBC)-b-P(NBPEO), bearing linear block P(NBDAP-co-NBC) (poly(norbornene-terminated diaminopyridine-co-norbornene-terminated hexane)) with pendant H-bonding DAP (diaminopyridine) motifs, and PEO (poly(ethylene oxide)) densely grafted P(NBPEO) brush block. Thanks to H-bonding association between DAP and thymine (Thy), incorporation of Thy-functionalized polystyrene (Thy-PS) enables solution self-assembly and formation of H-bonded bottlebrush block copolymers, generating augmented nanospheres with increasing Thy-PS amount. Noteworthy that integration of inorganic cluster silicotungstic acid (STA) to P(NBC-co-NBDAP)-b-P(NBPEO), endows the formation of PEO/STA eutectic core. Therefore, co-crystallization-assistant self-assembly at the interfaces of polymeric, inorganic and supramolecular chemistry is realized, reflecting multi-stage morphology transformation from hexagonal platelets, needle-like, curved rod-like micelles, finally to end-to-end closed rings, by gradually increasing Thy-PS while fixing STA content. Interestingly, such solution self-assembly to co-crystallization-assistant self-assembly strategy not only endows unique nanostructure transition, also induce in-to-out reconfiguration of PS domains. These findings clearly provide unique methodology towards programmable fabrication of geometrical objects promising in smart materials.
实现超分子刷状嵌段共聚物向拓扑工程的结构重构特别受关注,但具有挑战性。在此,我们致力于创建超分子结构,以探索组装拓扑结构如何影响结构化聚集体,结合氢键(H键)刷状嵌段共聚物和静电相互作用诱导的聚合物/无机共晶。我们首先设计了氢键线性刷状嵌段共聚物P(NBDAP-co-NBC)-b-P(NBPEO),其带有线性嵌段P(NBDAP-co-NBC)(聚(降冰片烯封端的二氨基吡啶-共-降冰片烯封端的己烷)),带有侧链氢键DAP(二氨基吡啶)基序,以及PEO(聚环氧乙烷)密集接枝的P(NBPEO)刷状嵌段。由于DAP与胸腺嘧啶(Thy)之间的氢键缔合,掺入Thy功能化聚苯乙烯(Thy-PS)可实现溶液自组装并形成氢键刷状嵌段共聚物,随着Thy-PS量的增加产生增大的纳米球。值得注意的是,将无机簇硅钨酸(STA)整合到P(NBC-co-NBDAP)-b-P(NBPEO)中,可形成PEO/STA共晶核。因此,实现了聚合物、无机和超分子化学界面处的共结晶辅助自组装,通过在固定STA含量的同时逐渐增加Thy-PS,反映了从六方片状到针状、弯曲棒状胶束,最终到端对端闭环的多阶段形态转变。有趣的是,这种从溶液自组装到共结晶辅助自组装的策略不仅赋予独特的纳米结构转变,还诱导了PS域的由内向外重构。这些发现清楚地提供了一种独特的方法,用于可编程制造在智能材料中具有前景的几何物体。