Recent Advances in Molecularly Imprinted Polymers for Antibiotic Analysis

分子印迹聚合物 分子印迹 固相萃取 聚合物 材料科学 分子识别 纳米技术 色谱法 化学 萃取(化学) 有机化学 选择性 分子 复合材料 催化作用
作者
Guangli Zhao,Yue Zhang,Dani Sun,Shili Yan,Yuhao Wen,Yixiao Wang,Guisheng Li,Huitao Liu,Jinhua Li,Zhihua Song
出处
期刊:Molecules [Multidisciplinary Digital Publishing Institute]
卷期号:28 (1): 335-335 被引量:26
标识
DOI:10.3390/molecules28010335
摘要

The abuse and residues of antibiotics have a great impact on the environment and organisms, and their determination has become very important. Due to their low contents, varieties and complex matrices, effective recognition, separation and enrichment are usually required prior to determination. Molecularly imprinted polymers (MIPs), a kind of highly selective polymer prepared via molecular imprinting technology (MIT), are used widely in the analytical detection of antibiotics, as adsorbents of solid-phase extraction (SPE) and as recognition elements of sensors. Herein, recent advances in MIPs for antibiotic residue analysis are reviewed. Firstly, several new preparation techniques of MIPs for detecting antibiotics are briefly introduced, including surface imprinting, nanoimprinting, living/controlled radical polymerization, and multi-template imprinting, multi-functional monomer imprinting and dummy template imprinting. Secondly, several SPE modes based on MIPs are summarized, namely packed SPE, magnetic SPE, dispersive SPE, matrix solid-phase dispersive extraction, solid-phase microextraction, stir-bar sorptive extraction and pipette-tip SPE. Thirdly, the basic principles of MIP-based sensors and three sensing modes, including electrochemical sensing, optical sensing and mass sensing, are also outlined. Fourthly, the research progress on molecularly imprinted SPEs (MISPEs) and MIP-based electrochemical/optical/mass sensors for the detection of various antibiotic residues in environmental and food samples since 2018 are comprehensively reviewed, including sulfonamides, quinolones, β-lactams and so on. Finally, the preparation and application prospects of MIPs for detecting antibiotics are outlined.
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