Wang Juan, Zhang Zhaona, Gao Xinru, Han Huiting, Guo Siru, Zhai Yilin, Yuan Ruoyu, Wang Xinxing, He Maoshuai
Key Laboratory of Optic-electric Sensing and Analytical Chemistry for Life Science, MOE, Shandong Key Laboratory of Biochemical Analysis, Key Laboratory of Analytical Chemistry for Life Science in Universities of Shandong, Key Laboratory of Eco-chemical Engineering, College of Chemistry and Molecular Engineering, Qingdao University of Science and Technology, Qingdao 266042, China.
Key Laboratory of Optic-electric Sensing and Analytical Chemistry for Life Science, MOE, Shandong Key Laboratory of Biochemical Analysis, Key Laboratory of Analytical Chemistry for Life Science in Universities of Shandong, Key Laboratory of Eco-chemical Engineering, College of Chemistry and Molecular Engineering, Qingdao University of Science and Technology, Qingdao 266042, China; College of Biological Engineering, Qingdao University of Science and Technology, Qingdao 266042, China.
Talanta. 2025 Sep 1;292:127949. doi: 10.1016/j.talanta.2025.127949. Epub 2025 Mar 20.
Catechol (CC) is an important environmental pollutant due to its toxicity, non-degradability and widespread distribution. The rapid, sensitive, and selective detection of CC remains a challenging task owing to the coexistence of multiple phenolic pollutants with similar structures and properties in the environment. This article proposed an electrochemical sensing system that combined a molecularly imprinted sensing interface and ratiometric indicator displacement assay (IDA) for sensitive and selective detection of CC. A unique carbon nanotubes (CNTs) interpenetrating ZIF-8 material (CNT@ZIF-8) was successfully prepared and utilized as a support for surface molecular imprinting of CC. As a substrate material, CNT@ZIF-8 increased the electroactive surface area of the electrode, improved electronic conductivity, and promoted the bonding stability of molecularly imprinted polymer (MIP) film on the electrode. The developed sensing interface exhibited excellent adsorption affinity, enrichment ability, and signal transduction ability towards CC. On this basis, a novel IDA method based on ratiometric electrochemical signals was developed using epinephrine (EP) as a competitive indicator. The proposed electrochemical sensing platform had a wide linear range of 1-1000 μM with a detection limit of 0.23 μM and exhibited high anti-interference ability, good repeatability, superior regenerability, and long-term stability. The sensing system was applied to the analysis of CC in tap water and green tea samples, with recoveries of 94.4 %-104 % and 95.7 %-106.7 %, respectively, demonstrating broad practical application prospects. This study not only provides a promising conductive material for surface molecular imprinting and electrochemical sensing but also offers a reliable strategy for the electrochemical detection of CC.
儿茶酚(CC)因其毒性、难降解性和广泛分布,是一种重要的环境污染物。由于环境中存在多种结构和性质相似的酚类污染物,快速、灵敏且选择性地检测CC仍然是一项具有挑战性的任务。本文提出了一种电化学传感系统,该系统结合了分子印迹传感界面和比率型指示剂置换分析法(IDA),用于灵敏且选择性地检测CC。成功制备了一种独特的碳纳米管(CNT)互穿ZIF-8材料(CNT@ZIF-8),并将其用作CC表面分子印迹的载体。作为基底材料,CNT@ZIF-8增加了电极的电活性表面积,提高了电子导电性,并促进了分子印迹聚合物(MIP)膜在电极上的键合稳定性。所开发的传感界面对CC表现出优异的吸附亲和力、富集能力和信号转导能力。在此基础上,以肾上腺素(EP)为竞争指示剂,开发了一种基于比率型电化学信号的新型IDA方法。所提出的电化学传感平台具有1-1000 μM的宽线性范围,检测限为0.23 μM,具有高抗干扰能力、良好的重复性、优异的可再生性和长期稳定性。该传感系统应用于自来水和绿茶样品中CC的分析,回收率分别为94.4%-104%和95.7%-106.7%,显示出广阔的实际应用前景。本研究不仅为表面分子印迹和电化学传感提供了一种有前景的导电材料,还为CC的电化学检测提供了一种可靠的策略。