Fei Jia-Jun, Wu Xiao-Hong, Sun Yue-Lun, Zhao Ling-Yu, Min Hong, Cui Xiao-Bing, Chen Yi-Jun, Liu Shu, Lian Hong-Zhen, Li Chen
State Key Laboratory of Analytical Chemistry for Life Science, School of Chemistry & Chemical Engineering and Center of Materials Analysis, Nanjing University, Nanjing, 210023, China.
Technical Center for Industrial Product and Raw Material Inspection and Testing, Shanghai Customs, Shanghai, 200135, China.
Anal Chim Acta. 2021 Jun 1;1162:338477. doi: 10.1016/j.aca.2021.338477. Epub 2021 Apr 8.
In this work, a novel amino functionalized Cu(II) ion-imprinted organic-inorganic hybrid monolithic column (Cu(II)-IIHMC) was prepared via one-pot co-condensation and the combination of sol-gel and ion-imprinting techniques in a fused capillary. The Cu(II)-IIHMC was used as solid phase microextraction (SPME) matrix followed by inductively coupled plasma-mass spectrometry (ICP-MS) for the analysis of trace Cu(II). The prepared Cu(II)-IIHMC has good mechanical strength, stable imprinting sites and homogeneous structure of network skeleton with large flow-through pores by optimizing the synthesis process. Under the optimized conditions, the Cu(II)-IIHMC can selectively adsorb Cu(II) with the adsorption capacity of 3.13 mg g. With enrichment factor of 10-fold, the calibration curve was established in the range of 0.05-50 μg L with r of 0.9992 and the detection limit was 0.008 μg L for Cu(II). Compared with the non-imprinted hybrid monolithic column (Cu(II)-NIHMC), the Cu(II)-IIHMC possesses better selectivity, anti-interference ability and adsorption capacity. The Cu(II)-IIHMC can specifically capture the target ion in the presence of competitive ions, with the selectivity coefficients exceeding 39.4. The protocol was validated by analyzing Certified Reference Materials of standard sediment, soil and iron ore, and the results were in good agreement with certified values. Moreover, the proposed in-tube SPME procedure can not only preconcentrate trace Cu(II), but also effectively reduce the matrix effect and powerfully eliminate the interference from the main metals in real samples. Therefore, the developed SPME-ICP-MS method with facile preparation, specific selectivity, high sensitivity and efficient analysis, was applied in the determination of trace Cu(II) in environmental and mineral samples with the recoveries of 89.8-111.8% in all spiked samples.
在本工作中,通过一锅共缩合以及溶胶 - 凝胶和离子印迹技术在熔融毛细管中的结合,制备了一种新型氨基功能化铜(II)离子印迹有机 - 无机杂化整体柱(Cu(II)-IIHMC)。将Cu(II)-IIHMC用作固相微萃取(SPME)基质,随后采用电感耦合等离子体质谱(ICP-MS)分析痕量铜(II)。通过优化合成工艺,制备的Cu(II)-IIHMC具有良好的机械强度、稳定的印迹位点以及具有大通孔的网络骨架均匀结构。在优化条件下,Cu(II)-IIHMC能够选择性吸附铜(II),吸附容量为3.13 mg g。富集倍数为10倍时,在0.05 - 50 μg L范围内建立校准曲线,r为0.9992,铜(II)的检出限为0.008 μg L。与非印迹杂化整体柱(Cu(II)-NIHMC)相比,Cu(II)-IIHMC具有更好的选择性、抗干扰能力和吸附容量。Cu(II)-IIHMC能够在存在竞争离子的情况下特异性捕获目标离子,选择性系数超过39.4。通过分析标准沉积物、土壤和铁矿石的标准参考物质对该方法进行了验证,结果与认定值吻合良好。此外,所提出的管内SPME方法不仅可以预富集痕量铜(II),还能有效降低基质效应并有力消除实际样品中主要金属的干扰。因此,所开发的具有制备简便、特异性选择性、高灵敏度和高效分析特点的SPME - ICP-MS方法应用于环境和矿物样品中痕量铜(II)的测定,所有加标样品的回收率为89.8 - 111.8%。