College of Chemistry, Research Center for Analytical Sciences, Tianjin Key Laboratory of Molecular Recognition and Biosensing, Nankai University, Tianjin, 300071, China.
College of Chemistry, Research Center for Analytical Sciences, Tianjin Key Laboratory of Molecular Recognition and Biosensing, Nankai University, Tianjin, 300071, China.
Talanta. 2020 Jan 1;206:120179. doi: 10.1016/j.talanta.2019.120179. Epub 2019 Jul 24.
In this work, the magnetic amino-functionalized microporous organic network composites (FeO@MON-NH) were rational designed and facile synthesized for magnetic solid phase extraction (MSPE) of endocrine disrupting chemicals (EDCs), followed by their analysis with high-performance liquid chromatography. The incorporation of amino groups (hydrogen bonding sites) into hydrophobic MON-NH networks led to their good enrichment for four typical EDCs bisphenol A (BPA), 4-alpha-cumylphenol (4-α-CP), 4-tert-octylphenol (4-t-OP) and 4-nonylphenol (4-NP) relying on the pre-designed hydrogen bonding, π-π and hydrophobic interactions. The combination of MON-NH shell and magnetic FeO core provided a fast extraction of BPA, 4-α-CP, 4-t-OP and 4-NP from matrix solution. Under the optimal conditions, the developed method offered good linearity (R > 0.990) in the range of 0.05-1000 μg L, low limits of detection (S/N = 3) of 0.015-0.030 μg L and large enrichment factors of 172-197 for the studied EDCs. The maximum adsorption capacities of BPA, 4-α-CP, 4-t-OP and 4-NP were 124.1, 105.6, 116.6 and 117.9 mg g, respectively. The FeO@MON-NH gave larger selectivity for other polar phenols than non-polar polycyclic aromatic hydrocarbons, revealing the dominant role of hydrogen bonding interaction during the extraction and the potential of FeO@MON-NH for other polar phenols. The developed method was successfully applied for the analysis of EDCs in water, orange juice and beverage bottle samples with the recoveries of 80.3-109.5%. These results revealed the potential of functional MONs as efficient adsorbents in sample pretreatment.
在这项工作中,我们合理设计并简便合成了磁性氨基功能化微孔有机网络复合材料(FeO@MON-NH),用于磁性固相萃取(MSPE)内分泌干扰物(EDCs),然后用高效液相色谱法对其进行分析。氨基(氢键结合位点)的引入使得 MON-NH 网络具有良好的疏水性,有利于四种典型的 EDCs(双酚 A(BPA)、4-α-枯基苯酚(4-α-CP)、4-叔辛基苯酚(4-t-OP)和 4-壬基苯酚(4-NP))的富集,这是基于预先设计的氢键、π-π 和疏水相互作用。MON-NH 壳和磁性 FeO 核的结合为 BPA、4-α-CP、4-t-OP 和 4-NP 从基质溶液中的快速萃取提供了可能。在最佳条件下,该方法在 0.05-1000μg/L 范围内表现出良好的线性(R>0.990),检测限(S/N=3)低至 0.015-0.030μg/L,研究的 EDCs 的富集因子高达 172-197。BPA、4-α-CP、4-t-OP 和 4-NP 的最大吸附容量分别为 124.1、105.6、116.6 和 117.9mg/g。FeO@MON-NH 对其他极性酚类化合物的选择性大于非极性多环芳烃,表明在萃取过程中氢键相互作用起主导作用,FeO@MON-NH 对其他极性酚类化合物具有潜在的应用价值。该方法成功应用于水、橙汁和饮料瓶样品中 EDCs 的分析,回收率为 80.3-109.5%。这些结果表明,功能化 MON 作为高效吸附剂在样品预处理中具有潜力。