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C 掺杂 ZnO 纳米复合材料分子印迹光电化学传感器用于牛奶中环丙沙星的超灵敏和选择性检测。

C-doped ZnO nanocomposites molecularly imprinted photoelectrochemical sensor for ultrasensitive and selective detection of oxytetracycline in milk.

机构信息

Key Laboratory of Chemical Materials and Green Nanotechnology, College of Chemical Engineering and Materials Science, Quanzhou Normal University, Quanzhou, Fujian 362000, China; College of Food Science, Fujian Agriculture and Forestry University, Fuzhou, Fujian 350002, China.

Key Laboratory of Chemical Materials and Green Nanotechnology, College of Chemical Engineering and Materials Science, Quanzhou Normal University, Quanzhou, Fujian 362000, China.

出版信息

Food Chem. 2023 Nov 15;426:136535. doi: 10.1016/j.foodchem.2023.136535. Epub 2023 Jun 9.

Abstract

Antibiotic monitoring remains vital to ensure human health and safety in the environment and foods. As the most popular detection method, photoelectrochemical (PEC) sensor can achieve rapid and accurate detection of antibiotics with the advantages of high sensitivity, easy-to-preparation process, as well as high selectivity. Herein, an extremely-efficient visible-light responsible ZnO/C nanocomposite was prepared and combined with acetylene black (as an enhanced conductive matrix), and the electron migration efficiency was greatly accelerated. Meanwhile, a molecularly imprinted polymer obtained by electrical agglomeration was conjugated as a specific recognizing site for target. Furthermore, the as-prepared rMIP-PEC sensor showed a low detection limit (8.75 pmol L, S/N = 3) in a wide linear detection range of 0.01-1000 nmol L for oxytetracycline (OTC), with excellent selectivity and long-term stability. Our work shed light on applying C-doped ZnO semiconductor and molecularly imprinted polymer as photoelectric active sensing materials for rapid and accurate analysis of antibiotics in foods and environment.

摘要

抗生素监测对于确保环境和食品中的人类健康和安全仍然至关重要。作为最受欢迎的检测方法,光电化学(PEC)传感器具有灵敏度高、制备工艺简单以及选择性好等优点,可实现抗生素的快速准确检测。在此,制备了一种高效的可见光响应 ZnO/C 纳米复合材料,并与乙炔黑(作为增强导电基质)结合,极大地加速了电子迁移效率。同时,电凝聚得到的分子印迹聚合物被用作目标物的特定识别位点。此外,所制备的 rMIP-PEC 传感器对土霉素(OTC)的检测下限低(8.75 pmol L,S/N = 3),线性检测范围为 0.01-1000 nmol L,具有优异的选择性和长期稳定性。我们的工作为应用 C 掺杂 ZnO 半导体和分子印迹聚合物作为光电活性传感材料,用于快速准确地分析食品和环境中的抗生素提供了思路。

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