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Hierarchical Polymer-Carbon Nanotube Hybrid Mesostructures by Crystallization-Driven Self-Assembly

机译:结晶驱动自组装的分层聚合物-碳纳米管杂化介观结构。

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Multistep crystallization-driven self-assembly has great potential to enable the construction of sophisticated hybrid mesostructures. During the assembly procedure, each step modifies the properties of the overall structure. Here, we demonstrate the flexibility and efficiency of this approach by preparing polymer carbon nanotube (CNT) hybrid mesostructures. We started by growing polyferrocenyldimethylsilane (PFS) homopolymer crystals onto multiwalled CNTs. This first step facilitated the redispersion of the coated CNTs in both polar (2-propanol) and nonpolar (decane) solvents. In the second step of hybrid construction, a unimer solution of a PFS block copolymer was added into the PFS-CNT solution. The PFS coating on the CNT initiated the growth of elongated micelles, resulting in structures that resembled hairy caterpillars. PFS-b-P2VP (P2VP = poly-2-vinylpyridine) micelles were grown from the surface of PFS-CNT hybrids in 2-propanol, and PFS-b-PI (PI = polyisoprene) micelles were grown from these hybrids in decane. These micelles, by transmission electron microscopy were seen to have an unusual wavy kinked structure, very different from the uniform smooth structures normally formed by both block copolymers. For hybrids with PFS-b-PI micelles, cross-linking of the micelle coronas locked the whole structure in place and allowed us to use the partial oxidation of PFS components to grow metal nanoparticles in the core of these micelles. We finally investigated the influence of the corona-forming block used to grow the micelles on the wettability of films made from these mesostructures. Films formed with CNT hybrids grafted with PFS-b-PI micelles were superhydrophobic (contact angle, 152 degrees). In contrast, the surface of the films was much more hydrophilic (contact angle, 54 degrees) when they were prepared from CNT hybrids grafted with PFS-b-P2VP micelles.
机译:多步结晶驱动的自组装具有巨大的潜力,可以构建复杂的混合介观结构。在组装过程中,每个步骤都会修改整个结构的属性。在这里,我们通过制备聚合物碳纳米管(CNT)混合介观结构展示了这种方法的灵活性和效率。我们首先将聚二茂铁基二甲基硅烷(PFS)均聚物晶体生长到多壁CNT上。该第一步促进了涂覆的CNT在极性(2-丙醇)和非极性(癸烷)溶剂中的再分散。在混合结构的第二步中,将PFS嵌段共聚物的单体溶液添加到PFS-CNT溶液中。 CNT上的PFS涂层引发了伸长的胶束的生长,导致了类似于毛毛虫的结构。从2-丙醇中的PFS-CNT杂化物表面生长PFS-b-P2VP(P2VP =聚-2-乙烯基吡啶)胶束,并在癸烷中从这些杂种中生长PFS-b-PI(PI =聚异戊二烯)胶束。通过透射电子显微镜观察,这些胶束具有不寻常的波浪形扭结结构,与通常由两种嵌段共聚物通常形成的均匀光滑结构完全不同。对于具有PFS-b-PI胶束的杂化物,胶束电晕的交联将整个结构锁定在适当的位置,并允许我们使用PFS组分的部分氧化来在这些胶束的核心中生长金属纳米颗粒。我们最终研究了用于生长胶束的电晕形成嵌段对由这些介孔结构制成的薄膜的润湿性的影响。用接有PFS-b-PI胶束的CNT杂化体形成的薄膜具有超疏水性(接触角为152度)。相反,当由接枝有PFS-b-P2VP胶束的CNT杂化物制备薄膜时,薄膜表面的亲水性更高(接触角为54度)。

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