Department of Chemistry, University of Pennsylvania, Philadelphia, Pennsylvania 19104, USA.
ACS Nano. 2012 Mar 27;6(3):2844-52. doi: 10.1021/nn300385p. Epub 2012 Mar 7.
Herein, we report a high-yield click synthesis and self-assembly of conjugated amphiphilic block copolymers of polythiophene (PHT) and polyethylene glycol (PEG) and their superstructures. A series of different length PHT(m)-b-PEG(n) with well-defined relative block lengths was synthesized by a click-coupling reaction and self-assembled into uniform and stably suspended nanofibers in selective solvents. The length of nanofibers was controllable by varying the relative block lengths while keeping other dimensions and optical properties unaffected for a broad range of f(PHT) (0.41 to 0.82), which indicates that the packing of PHT dominates the self-assembly of PHT(m)-b-PEG(n). Furthermore, superstructures of bundled and branched nanofibers were fabricated through the self-assembly of PHT(m)-b-PEG(n) and preformed PHT nanofibers. The shape, length, and density of the hierarchical assembly structures can be controlled by varying the solvent quality, polymer lengths, and block copolymer/homopolymer ratio. This work demonstrates that complex superstructures of organic semiconductors can be fabricated through the bottom-up approach using preformed nanofibers as building blocks.
在这里,我们报告了一种高产的点击合成和共轭两亲嵌段共聚物的聚噻吩(PHT)和聚乙二醇(PEG)及其超结构的自组装。通过点击偶联反应合成了一系列不同长度的具有明确相对嵌段长度的 PHT(m)-b-PEG(n),并在选择性溶剂中自组装成均匀且稳定悬浮的纳米纤维。通过改变相对嵌段长度,可以控制纳米纤维的长度,同时保持其他尺寸和光学性质不变,对于较宽的 f(PHT)(0.41 至 0.82)范围,这表明 PHT 的组装主导了 PHT(m)-b-PEG(n)的自组装。此外,通过 PHT(m)-b-PEG(n)和预形成的 PHT 纳米纤维的自组装,制备了束状和支化纳米纤维的超结构。通过改变溶剂质量、聚合物长度和嵌段共聚物/均聚物比,可以控制分级组装结构的形状、长度和密度。这项工作表明,通过使用预形成的纳米纤维作为构建块,通过自下而上的方法可以制备复杂的有机半导体超结构。