Smart Hybrid Materials Laboratory (SHMs), Advanced Membranes and Porous Materials Center, King Abdullah University of Science and Technology (KAUST) , Thuwal 23955-6900, Saudi Arabia.
Imaging and Characterization Core Laboratories, King Abdullah University of Science & Technology (KAUST) , Thuwal 23955-6900, Saudi Arabia.
J Am Chem Soc. 2017 Aug 2;139(30):10232-10238. doi: 10.1021/jacs.6b10080. Epub 2016 Nov 1.
Toroidal structures based on self-assembly of predesigned building blocks are well-established in the literature, but spontaneous self-organization to prepare such structures has not been reported to date. Here, organic-inorganic hybrid microtoroids synthesized by simultaneous coordination-driven assembly of amphiphilic molecules and hydrophilic polymers are reported. Mixing amphiphilic molecules with iron(III) chloride and hydrophilic polymers in water leads, within minutes, to the formation of starlike nanostructures. A spontaneous self-organization of these nanostructures is then triggered to form stable hybrid microtoroids. Interestingly, the toroids exhibit anisotropic hierarchical growth, giving rise to a layered toroidal framework. These microstructures are mechanically robust and can act as templates to host metallic nanoparticles such as gold and silver. Understanding the nature of spontaneous assembly driven by coordination multiple non-covalent interactions can help explain the well-ordered complexity of many biological organisms in addition to expanding the available tools to mimic such structures at a molecular level.
基于预先设计的构筑单元的自组装所形成的环形结构在文献中已有很好的报道,但目前还没有关于自发自组装来制备这种结构的报道。本文报道了通过两亲分子和亲水聚合物的同时配位驱动组装合成的有机-无机杂化微环。在水中混合两亲分子、三氯化铁和亲水聚合物,几分钟内即可形成星状纳米结构。然后,这些纳米结构会自发进行自组装,形成稳定的杂化微环。有趣的是,这些微环表现出各向异性的分级生长,形成层状的环形骨架。这些微结构机械强度高,可用作模板来容纳金和银等金属纳米粒子。理解由配位多重非共价相互作用驱动的自发组装的本质,除了扩展在分子水平上模拟这些结构的可用工具之外,还可以帮助解释许多生物有机体内有序的复杂性。