Highly sensitive and selective fluorescent detection of metronidazole by Zn (II)-based metal-organic framework

Ali Mokari , Somayeh hamd Ghadareh , Abdollah Salimi
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Abstract

Here, we report a novel zinc-based metal-organic framework (Zn-MOF), synthesized via a solvothermal approach, as a highly selective and cost-effective fluorescent probe for detecting metronidazole, a widely used antibiotic linked to environmental and health risks. The MOF’s structural and optical properties, studied through spectroscopic and microscopic analyses, reveal tunable luminescence behavior that is selectively quenched in the presence of metronidazole. This fluorescence quenching mechanism enables precise detection of metronidazole across a broad linear range (10–346 µM) with a low detection limit of 0.25 µM. Also, the sensor demonstrates exceptional specificity for metronidazole even in complex biological matrices such as human serum, showing negligible interference from structurally analogous antibiotics and common ions. Its rapid response time, stability under diverse environmental conditions, and scalable fabrication process underscore its practicality for real-world applications. By addressing key limitations of existing techniques, including high cost, complexity, and cross-reactivity, this work establishes an applicable platform for monitoring antibiotic residues in clinical and environmental settings, advancing both material science and public health initiatives.
基于Zn (II)金属-有机骨架的甲硝唑高灵敏度和选择性荧光检测
在这里,我们报告了一种新的锌基金属有机框架(Zn-MOF),通过溶剂热方法合成,作为一种高选择性和成本效益的荧光探针,用于检测甲硝唑,甲硝唑是一种广泛使用的抗生素,与环境和健康风险有关。通过光谱和微观分析研究了MOF的结构和光学性质,揭示了在甲硝唑存在下选择性猝灭的可调谐发光行为。这种荧光猝灭机制能够在宽线性范围(10-346 µM)内精确检测甲硝唑,检测限低至0.25 µM。此外,该传感器对甲硝唑表现出特殊的特异性,即使在复杂的生物基质(如人血清)中,也可以忽略结构类似抗生素和普通离子的干扰。其快速响应时间,在各种环境条件下的稳定性和可扩展的制造工艺强调了其在现实世界应用中的实用性。通过解决现有技术的主要局限性,包括高成本、复杂性和交叉反应性,这项工作建立了一个适用于临床和环境环境中抗生素残留监测的平台,促进了材料科学和公共卫生倡议。
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