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Nanoporous Polymer Networks Templated by Gemini Surfactant Lyotropic Liquid Crystals

机译:由Gemini表面活性剂溶液液晶模糊的纳米多孔聚合物网络

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摘要

Nanoporous polymers with periodic, ordered structures have attracted significant interest for their potential applications as drug delivery vehicles, biomaterials, separations membranes, and materials for energy storage. Inducing polymer nanostructure through lyotropic liquid crystal-templated (LLC-templated) cross-linking photopolyinerizations offers a promising means for morphological control at smaller length scales, which are difficult to access by other established strategies. We report the synthesis of a gemini dicarboxylate surfactant that self-assembles in water to form various aqueous LLC mesophases over a broad range of amphiphile concentrations, with an especially strong propensity to form the coveted bicontinuous double gyroid (G(I)) network mesophase. Aqueous G(I) LLCs surprisingly persist upon incorporation of as much as 10-37 wt % hexane-1,6-diol dimethacrylate (HDDMA) into the hydrophobic domains of these supramolecular surfactant assemblies, and cross-linking photopolymerization of the HDDMA unexpectedly proceeds with retention of this intricate LLC nanostructure. The nanoporous nature of the resulting templated polymers remains after surfactant removal by solvent extraction, as manifested by increased swelling ratios in water and 2-propanol as comparedto isotropic materials of similar compositions. The exquisite level of control over polymer network porosity provided by templating within GI phases furnishes a promising new route toward nanostructured hydrophobic polymers.
机译:具有周期性的纳米多孔聚合物,有序结构引起了潜在应用的显着兴趣,作为药物递送载体,生物材料,分离膜和能量储存材料。通过旋流液晶模板诱导聚合物纳米结构(LLC模板)交联光电化物质提供了在较小长度尺度下的形态控制的有希望的手段,这难以通过其他既定的策略访问。我们报告了双子聚羧酸甲酯表面活性剂的合成,即在水中自组装以形成各种含水LLC中间蛋白酶的宽范围的两亲浓度,具有特别强烈的倾向以形成令人垂涎的双腺苷(G(I))网络中间相胞苷。含水溶液(I)LLC令人惊讶地坚持在这些超分子表面活性剂组件的疏水结构晶体中掺入多达10-37重量%的己烷-1,6-二醇二甲基丙烯酸酯(HDDMA),并意外地进行HDDMA的交联光聚合保留该复杂的LLC纳米结构。所得模板聚合物的纳米多孔性质在溶剂萃取后除去表面活性剂除去后,通过增加水和2-丙醇的溶胀比增加,与相似组合物的各向同性材料相比。通过GI阶段内的模板提供的聚合物网络孔隙度的精致控制水平提供了朝向纳米结构疏水聚合物的有希望的新途径。

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