首页> 外文期刊>Journal of the Iranian Chemical Society >Fabrication of porous molecularly imprinted polymer using halloysite nanotube as template for selective recognition and separation of chloramphenicol
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Fabrication of porous molecularly imprinted polymer using halloysite nanotube as template for selective recognition and separation of chloramphenicol

机译:使用Holloysite Nanotube制备多孔分子印迹聚合物作为模板,用于选择性识别和分离氯霉素

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摘要

In this research, porous molecularly imprinted polymers (PMIPs) with thin wall were prepared using halloysite nanotube (HNT) hard template, which has a unique hollow tubular structure, for selective recognition and removal of the chloramphenicol (CAP) antibiotic frequently detected in water environment. PMIPs had the good porous structure replicated from the HNT template. The adsorption equilibrium, kinetics, selectivity and regeneration properties of CAP by PMIPs were systematically studied by static adsorption experiments. The maximum adsorption capacity of PMIPs toward CAP increased from 91.26 mu mol g(-1) at 25 degrees C to 102.5 mu mol g(-1) 45 degrees C. The adsorption was in accordance with Freundlich isothermal model, indicating the multi-molecular layer adsorption. The adsorption could reach equilibrium basically within 80 min with a quick kinetic property and was confirmed by the pseudo-second-order kinetics model, indicating the chemical adsorption was rate-controlling step. The high contact temperature was beneficial to the CAP adsorption, thus which was belonged to the endothermic process. Importantly, adsorption selectivity experiments showed PMIPs had the high recognition ability for template molecule CAP whether in one- or two- component antibiotic solutions. Besides, PMIPs exhibited good thermal and chemical stability and reproducibility for practical application in further.
机译:在该研究中,使用具有薄壁的多孔分子印记的聚合物(PMIPS)使用Holloysite Nanotube(HNT)硬模板制备,具有独特的中空管状结构,用于选择性识别和除去在水环境中经常检测到的氯霉素(帽)抗生素。 PMIPS具有从HNT模板复制的良好多孔结构。通过静态吸附实验系统地研究了PMIPS通过PMIP的吸附平衡,动力学,选择性和再生性能。 PMIPS向帽的最大吸附容量从91.26μmolg(-1)增加到25℃至102.5μmmolg(-1)45℃。吸附符合Freundlich等温模型,表明多分子层吸附。在80分钟内,吸附基本上可以在80分钟内达到平衡,并且通过伪二阶动力学模型确认,表明化学吸附是速率控制步骤。高接触温度有益于帽吸附,因此属于吸热过程。重要的是,吸附选择性实验表明PMIPS具有高识别能力,用于模板分子帽,无论是一种或双组分抗生素溶液。此外,PMIPS在进一步表现出良好的热和化学稳定性和再现性。

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