Chemistry Department, Faculty of Science, Ain Shams University, Abbasia, Cairo 11566, Egypt.
Pharmaceutical Chemistry Department, Drug Exploration & Development Chair (DEDC), College of Pharmacy, King Saud University, Riyadh 11451, Saudi Arabia.
Int J Environ Res Public Health. 2020 Feb 11;17(4):1138. doi: 10.3390/ijerph17041138.
Screen-printed platforms integrated with molecularly imprinted polymers (MIP) were fabricated and characterized as potentiometric sensors for diquat (DQ). The synthesized MIP beads were studied as sensory carriers in plasticized poly(vinyl chloride) membranes. The sensors were constructed by using poly(3,4-ethylenedioxythiophene) (PEDOT) as solid-contact material to diminish charge-transfer resistance and water layer potential. Conventional ion-selective electrodes (ISEs) with internal filling solution were used for comparison. The designed electrodes showed near Nernstian slopes of 28.2 ± 0.7 (r² = 0.999) over the concentration range of 1.0 × 10-1.0 × 10 M with the limit of detection 0.026 µg/mL over the pH range 4.2-9.0. The electrode exhibited good selectivity for diquat cations over a large number of organic and inorganic cations. The sensor was successfully introduced for direct measurement of diquat content in commercial pesticide preparations and different spiked potato samples. The results showed that the proposed electrode has a fast and stable response, good reproducibility, and applicability for direct assessment of diquat content. The proposed potentiometric method is simple and accurate in comparison with the reported HPLC methods. Besides, it is applicable to turbid and colored sample solutions.
丝网印刷平台与分子印迹聚合物(MIP)集成,并被制备和表征为二噁烷(DQ)的电位传感器。合成的 MIP 珠用作增塑聚氯乙烯膜中的敏感载体进行了研究。该传感器使用聚(3,4-亚乙基二氧噻吩)(PEDOT)作为固体接触材料来减小电荷转移电阻和水层电位。使用具有内部填充溶液的传统离子选择性电极(ISE)进行了比较。设计的电极在 1.0×10-1.0×10 M 的浓度范围内显示出接近 Nernst 斜率的 28.2±0.7(r²=0.999),在 pH 值为 4.2-9.0 范围内检测限为 0.026µg/mL。该电极对大量有机和无机阳离子表现出对二噁烷阳离子的良好选择性。该传感器成功地用于直接测量商业农药制剂和不同马铃薯样品中的二噁烷含量。结果表明,与报道的 HPLC 方法相比,该电极具有快速稳定的响应、良好的重现性和适用于直接评估二噁烷含量的能力。与报道的 HPLC 方法相比,该电位法简单准确。此外,它适用于混浊和有色样品溶液。