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超分子聚合物水凝胶由两亲性 L-组氨酸和苯二甲酸制备:触变性和显著增强 Eu(III)荧光。

Supramolecular polymer hydrogels from bolaamphiphilic L-histidine and benzene dicarboxylic acids: thixotropy and significant enhancement of Eu(III) fluorescence.

机构信息

Beijing National Laboratory for Molecular Science, Institute of Chemistry, Chinese Academy of Science, China.

出版信息

Chemistry. 2012 Nov 12;18(46):14650-9. doi: 10.1002/chem.201202637. Epub 2012 Oct 23.

Abstract

Supramolecular polymers from the bolaamphiphilic L-histidine (BolaHis) and benzene dicarboxylic acids (o-phthalic acid, OPA; isophthalic acid, IPA and terephthalic acid, TPA) were found to form hydrogels although neither of the single components could gel water. It was suggested that the hydrogen bond and ionic interactions among different imidazole and carboxylic acid groups are responsible for the formation of the supramolecular polymer as well as the hydrogel formation. Depending on the structures of the dicarboxylic acids, different behaviors of the gels were observed. The hydrogels from OPA/BolaHis and IPA/BolaHis showed thixotropic properties, that is, the hydrogel was destroyed by hand shaking and then slowly gelated again at room temperature. However, the hydrogels of TPA/BolaHis could not. Interestingly, when Eu(III) was doped into IPA/BolaHis supramolecular polymers, very strong luminescence enhancement was observed. FT-IR spectroscopies and XRD analysis revealed that the strong luminescence enhancement could be attributed to the matched supramolecular nanostructures, which render the correct binding and a good dispersion of Eu(III) ions. The work offers a new approach for fabricating functional hydrogels through the supramolecular polymers.

摘要

从 bolaamphiphilic L-组氨酸 (BolaHis) 和苯二甲酸 (邻苯二甲酸、OPA; 间苯二甲酸、IPA 和对苯二甲酸、TPA) 发现超分子聚合物可以形成水凝胶,尽管单一成分都不能使水凝胶化。有人提出,不同咪唑和羧酸基团之间的氢键和离子相互作用是形成超分子聚合物以及水凝胶形成的原因。根据二羧酸的结构,观察到不同的凝胶行为。OPA/BolaHis 和 IPA/BolaHis 的水凝胶表现出触变性,即水凝胶被手动摇动破坏,然后在室温下缓慢重新凝胶化。然而,TPA/BolaHis 的水凝胶则不行。有趣的是,当 Eu(III) 掺杂到 IPA/BolaHis 超分子聚合物中时,观察到非常强的发光增强。FT-IR 光谱和 XRD 分析表明,强发光增强归因于匹配的超分子纳米结构,这使得 Eu(III)离子具有正确的结合和良好的分散性。该工作为通过超分子聚合物制造功能性水凝胶提供了一种新方法。

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