Zhang Jian, Zeng Yanbo, Chen Lifen, Lei Xiaoling, Yang Yiwen, Chen Zhidong, Guo Longhua, Li Lei
School of Materials Science & Engineering, Changzhou University, Changzhou, 213016, PR China; Jiaxing Key Laboratory of Molecular Recognition and Sensing, College of Biological, Chemical Sciences and Engineering, Jiaxing University, Jiaxing, 314001, PR China.
Jiaxing Key Laboratory of Molecular Recognition and Sensing, College of Biological, Chemical Sciences and Engineering, Jiaxing University, Jiaxing, 314001, PR China.
Environ Res. 2023 May 15;225:115499. doi: 10.1016/j.envres.2023.115499. Epub 2023 Feb 26.
A novel core-shell composite of PCN-222 and molecularly imprinted poly (ionic liquid) (PCN-222@MIPIL) with high conductivity and selectivity was prepared for electrochemical sensing 4-nonylphenol (4-NP). The electrical conductivities of some MOFs including PCN-222, ZIF-8, NH-UIO-66, ZIF-67, and HKUST-1 were explored. The results indicated that PCN-222 had the highest conductivity and was then used as a novel imprinted support. PCN-222@MIPIL with core-shell and porous structure was synthesized using PCN-222 as support and 4-NP as template. The average pore volume of PCN-222@MIPIL was 0.085 m g. In addition, the average pore width of PCN-222@MIPIL was from 1.1 to 2.7 nm. The electrochemical response for PCN-222@MIPIL sensor for 4-NP was 2.54, 2.14, and 4.24 times that of non-molecularly imprinted poly (ionic liquid) (PCN-222@NIPIL), PCN-222, and MIPIL sensors, respectively, which result from superior conductivity and imprinted recognition sites of PCN-222@MIPIL. The current response of PCN-222@MIPIL sensor to 4-NP concentration from 1 × 10 to 10 μM presented an excellent linear relationship. The detection limit of 4-NP was 0.03 nM. The synergistic effect between the PCN-222 supporter with high conductivity, specific surface area and shell layer of surface MIPIL results in the outstanding performance of PCN-222@MIPIL. PCN-222@MIPIL sensor was adopted for detecting 4-NP in real samples and presented to be a reliable approach for determining 4-NP.
制备了一种具有高导电性和选择性的新型PCN-222与分子印迹聚(离子液体)的核壳复合材料(PCN-222@MIPIL)用于电化学传感4-壬基酚(4-NP)。研究了包括PCN-222、ZIF-8、NH-UIO-66、ZIF-67和HKUST-1在内的一些金属有机框架材料(MOF)的电导率。结果表明,PCN-222具有最高的电导率,因此被用作新型印迹载体。以PCN-222为载体、4-NP为模板合成了具有核壳和多孔结构的PCN-222@MIPIL。PCN-222@MIPIL的平均孔体积为0.085 m g。此外,PCN-222@MIPIL的平均孔径为1.1至2.7 nm。PCN-222@MIPIL传感器对4-NP的电化学响应分别是非分子印迹聚(离子液体)(PCN-222@NIPIL)、PCN-222和MIPIL传感器的2.54倍、2.14倍和4.24倍,这是由于PCN-222@MIPIL具有优异的导电性和印迹识别位点。PCN-222@MIPIL传感器对4-NP浓度从1×10到10 μM的电流响应呈现出良好的线性关系。4-NP的检测限为0.03 nM。具有高导电性、比表面积的PCN-222载体与表面MIPIL壳层之间的协同效应导致PCN-222@MIPIL具有出色的性能。采用PCN-222@MIPIL传感器检测实际样品中的4-NP,结果表明该方法是测定4-NP的可靠方法。