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Selective Enrichment of Clenbuterol onto Molecularly Imprinted Polymer Microspheres with Tailor-made Structure and Oxygen Functionalities

机译:克伦特罗在分子印制的具有微结构和氧功能的分子印迹聚合物微球上的选择性富集

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摘要

The noxious clenbuterol misapplied as the feed additive has posed an enormous threat to humans who actively rely on the food chains with high potential of contamination by clenbuterol, such as pork and beef. It is, therefore, highly desirable to develop novel materials and strategies for dealing with the clenbuterol. Herein, functional polymer microspheres prepared by Pickering emulsion polymerization were explored for the selective enrichment of the clenbuterol, and their structure and oxygen functionalities could be tailor-made by a molecular imprinting process. The clenbuterol imprinting was adequately demonstrated to not only increase the particle size (~52 nm vs. ~42 nm) and create cavities for the accommodation of the clenbuterol molecules, but also reduce the oxygen functionalities of the resulting molecularly imprinted polymer microspheres (MIPMs) by approximately 4 at.%, which is believed to correlate with the high specificity of the MIPMs. Various characterization methods were employed to evidence these findings, including scanning electron microscopy, BET measurements, Fourier transform infrared spectroscopy, X-ray photoelectron spectroscopy, and elemental mapping examination. More importantly, the MIPMs showed a markedly superior enrichment capability towards clenbuterol to the counterpart, that is, non-molecularly imprinted polymer microspheres (NIPMs). Compared to the NIPMs without specificity for clenbuterol, the MIPMs exhibited an impressive selectivity to clenbuterol, with the relative selectivity coefficient ( ) values largely exceeding 1, thus corroborating that the useful molecular imprinting led to the generation of the binding sites complementary to the clenbuterol molecule in the size and functionalities. The MIPMs were also employed as the stationary phase to fabricate molecularly imprinting solid-phase extraction column, and the spike recovery was demonstrated to be not significantly decreased even after nine cycles. Furthermore, the reliability of the method was also evidenced through the comparison of the MIPMs prepared from different batches.
机译:误用为饲料添加剂的有害克伦特罗对那些严重依赖具有克伦特罗污染潜力的食物链(如猪肉和牛肉)的人类构成了巨大威胁。因此,非常需要开发用于治疗克仑特罗的新颖材料和策略。在本文中,探索了通过Pickering乳液聚合制备的功能聚合物微球以选择性地富集克伦特罗,并且它们的结构和氧官能度可以通过分子印迹方法定制。盐酸克仑特罗的印迹得到充分证明,不仅增加了粒径(〜52 nm vs.〜42 nm)并创建了用于容纳盐酸克仑特罗分子的腔,而且还降低了所得的分子印迹聚合物微球(MIPM)的氧官能度大约4原子%,这被认为与MIPM的高特异性有关。各种表征方法被用于证明这些发现,包括扫描电子显微镜,BET测量,傅立叶变换红外光谱,X射线光电子光谱和元素图谱检查。更重要的是,MIPMs对克仑特罗的吸附能力明显优于非分子印迹聚合物微球(NIPMs)。与对克仑特罗没有特异性的NIPM相比,MIPM对克仑特罗表现出令人印象深刻的选择性,相对选择性系数()值大大超过1,从而证实了有用的分子印迹导致了与克仑特罗分子互补的结合位点的产生。在大小和功能上。 MIPM还用作固定相来制造分子印迹固相萃取柱,并且即使在九个循环后,加标回收率也没有显着降低。此外,还通过比较不同批次的MIPM证明了该方法的可靠性。

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