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首页> 外文期刊>RSC Advances >Hollow imprinted polymer nanorods with a tunable shell using halloysite nanotubes as a sacrificial template for selective recognition and separation of chloramphenicol
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Hollow imprinted polymer nanorods with a tunable shell using halloysite nanotubes as a sacrificial template for selective recognition and separation of chloramphenicol

机译:空心印迹聚合物纳米棒,具有可调谐壳,采用埃洛石纳米管作为牺牲模板,用于选择性识别和分离氯霉素

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摘要

The wide use of antibiotics in human therapy and veterinary practice has resulted in the presence of residual antibiotic compounds in water environments, which are harmful to ecology and health. In this work, novel hollow molecularly imprinted nanorods (HMINs) with uniform and controllable thickness of the polymer shell were successfully prepared via a combination of in situ surface precipitation polymerization and halloysite nanotubes sacrificial template method, and were used as an advanced selective nanoadsorbent to remove chloramphenicol (CAP). The physicochemical properties of HMINs were well characterized by FE-SEM, TEM, FT-IR and TG/DTA. HMINs with a shell thickness of 62 nm (HMINs-2) displayed excellent adsorption capacity and fast kinetics. The experimental adsorption equilibrium and kinetic data were best described by the Freundlich isotherm model and the pseudo-second-order rate equation, respectively. Furthermore, HMINs-2 possessed highly specific recognition to CAP in aqueous solutions, as compared with other reference antibiotics. Meanwhile, HMINs-2 also had excellent dispersibility, regeneration properties and thermal stability for the promising potential application in wastewater treatment.
机译:抗生素在人类治疗和兽医实践中的广泛使用已导致水环境中存在残留的抗生素化合物,这对生态和健康有害。在这项工作中,通过原位表面沉淀聚合和埃洛石纳米管牺牲模板法的组合成功地制备了具有均匀且可控的聚合物壳厚度的新型空心分子印迹纳米棒(HMIN),并用作先进的选择性纳米吸附剂来去除氯霉素(CAP)。 HMINs的理化性质通过FE-SEM,TEM,FT-IR和TG / DTA进行了很好的表征。壳厚度为62 nm的HMIN(HMINs-2)表现出出色的吸附能力和快速动力学。实验吸附平衡和动力学数据分别用Freundlich等温线模型和伪二级速率方程来最好地描述。此外,与其他参考抗生素相比,HMINs-2对水溶液中的CAP具有高度特异性的识别。同时,HMINs-2还具有优异的分散性,再生性能和热稳定性,有望在废水处理中得到应用。

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