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采用多种分析方法对直接法和以磁铁矿为核的分子印迹聚合物(MIPs和magMIPs)对选定查耳酮的吸附和选择性进行了研究。

Adsorption and selectivity studies of direct and magnetite-cored molecularly imprinted polymers (MIPs and magMIPs) towards chosen chalcones investigated with various analytical methods.

作者信息

Pawlaczyk Mateusz, Guć Maria, Schroeder Grzegorz

机构信息

Faculty of Chemistry, Adam Mickiewicz University in Poznań Uniwersytetu Poznańskiego 8 61-614 Poznań Poland

出版信息

RSC Adv. 2021 Jul 21;11(41):25334-25347. doi: 10.1039/d1ra03391c. eCollection 2021 Jul 19.

Abstract

The following article presents a method for obtaining molecularly imprinted polymers (MIPs) dedicated to -chalcone (TC) and 2',4'-dihydroxy-3-methoxychalcone (DHMC). The synthetic protocol optimized with a choice of the most suitable functional monomer led to the synthesis of MIPs and their non-imprinted equivalents (NIP) performed direct polymerization or on the surface of magnetite nanoparticles. The characterized materials were investigated for adsorption isotherms of TC and DHMC, which led to satisfactory values of maximal adsorption capacity, reaching 131.58 and 474.71 mg g, respectively. Moreover, all the polymers were studied for the adsorption kinetics and the selectivity towards four structurally different chalcones, which proved the proper selectiveness towards the template molecules. Also, the kinetic profiles of chalcones' adsorption on the synthesized MIPs showed a quasi-plateau reached already after 2 hours, indicating high sorption effectiveness. The studies involved the use of various analytical techniques, which afforded a comprehensive and reliable description of the materials' adsorption efficacy. It was found that the materials successfully bind the MIP-complementary analytes and also structurally similar chalcones, with slightly lower intensity.

摘要

以下文章介绍了一种制备用于 - 查耳酮(TC)和2',4'-二羟基-3-甲氧基查耳酮(DHMC)的分子印迹聚合物(MIP)的方法。通过选择最合适的功能单体优化合成方案,实现了MIP及其非印迹等效物(NIP)的合成,合成过程可直接进行聚合反应,也可在磁铁矿纳米颗粒表面进行。对所制备的材料进行了TC和DHMC吸附等温线的研究,结果表明最大吸附容量分别达到131.58和474.71 mg/g,令人满意。此外,还研究了所有聚合物对四种结构不同的查耳酮的吸附动力学和选择性,结果证明了它们对模板分子具有适当的选择性。而且,查耳酮在合成的MIP上的吸附动力学曲线显示,2小时后即达到准平台期,表明吸附效率很高。该研究涉及使用多种分析技术,从而对材料的吸附效果进行了全面且可靠的描述。结果发现,这些材料能够成功结合与MIP互补的分析物以及结构相似的查耳酮,只是结合强度略低。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a141/9036970/68d8227e141f/d1ra03391c-f1.jpg

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