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A novel molecularly imprinted electrochemical sensor modified with carbon dots, chitosan, gold nanoparticles for the determination of patulin

机译:用碳点,壳聚糖,金纳米颗粒改性的新型分子印迹电化学传感器用于测定髌粉

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摘要

In this paper, molecular imprinting technique was applied to the electrochemical sensor. We used 2-oxindole as dummy template, p-Aminothiophenol (rho-ATP) as functional monomers, combined with the high sensitivity of electrochemical detection, to achieve a specific and efficient detection of patulin in fruit juice. In addition, carbon dots and chitosan were used as the modifying material to improve electron-transfer rate, expand the electroactive surface of glassy carbon electrode and enhance strength of the signal. The Au-S bond and hydrogen bond were employed to complete the assembly of the rho-ATP and 2-oxindole on the surface of the electrode. Then, polymer membranes were formed by electropolymerization in a polymer solution containing rho-ATP, HAuCl4, tetrabutylammonium perchlorate (TBAP) and the template molecule 2-oxindole. After elution, the specific cavity can adsorb the target patulin. Cyclic voltammetry (CV) and differential pulse voltammetry (DPV) measurements were performed to monitor the electropolymerization process and its optimization. Transmission electron microscopy (TEM), Scanning electron microscopy (SEM) and Atomic force microscopy (AFM) analyses were used for characterization. This was the first time that the molecularly imprinted polymer (MIP) technology combined with carbon dots, chitosan and Au nanoparticles modification and was applied in the electrochemical detection of patulin. The linear response range of the MIP sensor was from 1 x 10(12) to 1 x 10(-9) mol L-1 and the limit of detection (LOD) was 7.57 x 10(-13) mol L-1 . The sensor had a high-speed real-time detection capability, low sample consumption, high sensitivity, low interference, good stability and could become a new promising method for the detection of patulin.
机译:本文将分子印迹技术应用于电化学传感器。我们使用2-氧吲哚作为假模板,P-氨基噻吩醇(Rho-ATP)作为功能性单体,与电化学检测的高灵敏度合并,实现果汁中的特异性有效地检测鉴定鉴定。此外,使用碳点和壳聚糖作为改性材料以提高电子传递速率,膨胀玻碳电极的电活性表面并增强信号的强度。使用AU-S键和氢键在电极表面上完成rho-ATP和2-氧吲哚的组装。然后,通过在含有rho-ATP,HauCl4,四氯酸氢铵(TBAP)和模板分子2-氧吲哚的聚合物溶液中的聚合物溶液中的聚合物膜形成聚合物膜。洗脱后,特定腔体可以吸附靶图案。进行循环伏安法(CV)和差分脉冲伏安法(DPV)测量以监测电聚合过程及其优化。透射电子显微镜(TEM),扫描电子显微镜(SEM)和原子力显微镜(AFM)分析用于表征。这是第一次将分子印迹聚合物(MIP)技术与碳点,壳聚糖和Au纳米颗粒改性相结合,并应用于鉴定的电化学检测中。 MIP传感器的线性响应范围为1×10(12)至1×10(-9)摩尔L-1,并且检测极限(LOD)为7.57×10(-13)摩尔L-1。传感器具有高速实时检测能力,低样品消耗,高灵敏度,低干扰,良好稳定性,并且可能成为检测鉴定的新有希望的方法。

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