Tianjin Key Laboratory of Risk Assessment and Control Technology for Environment and Food Safety, Tianjin Institute of Environmental and Operational Medicine, Tianjin, 300050, China.
Tianjin Key Laboratory of Risk Assessment and Control Technology for Environment and Food Safety, Tianjin Institute of Environmental and Operational Medicine, Tianjin, 300050, China.
Talanta. 2024 Apr 1;270:125632. doi: 10.1016/j.talanta.2024.125632. Epub 2024 Jan 5.
We explored a novel preparation method for MOF-on-MOF heterostructured material (Zn-BTEC@ZIF-8). This prepared heterostructured material acts as a container, capable of adsorbing tetracycline hydrochloride molecules into its backbone through hydrogen bonding and π-π interactions. This phenomenon triggers an aggregation induced emission (AIE) effect, leading to the formation of luminescent bodies. The coordination between histamine and MOF was found to collapse the originally stabilized MOF-on-MOF structure. This collapse causes the splitting of the initially stabilized MOF-on-MOF structure from the aggregated state into fragments, resulting in the quenching of fluorescence in the fluorophore. Remarkably, the fluorescence quenching efficiency of this composite surpasses that of single-layer metal-organic framework (MOF) zeolitic imidazolate framework-8 (ZIF-8) or zinc-based MOF of pyromellitic acid (Zn-BTEC), enabling more sensitive detection of histamine. In this investigation, we constructed a label-free fluorescent sensor specifically designed for the detection of histamine, capitalizing on the AIE effect inherent in MOF-on-MOF architecture and the presence of tetracycline hydrochloride (Tet). The sensor demonstrates a rapid, straightforward, and stable response, allowing for histamine detection within 20 min. Notably, the sensor covers a detection range of 2-400 mg L, achieving a low detection limit of 1.458 mg L The practical application of this sensor for quantitative detection of histamine in river water and various fish species exhibited robust performance, ensuring reliability and accuracy in real samples. Its potential application in food safety and environmental monitoring is evident, making it a valuable tool for addressing histamine-related challenges in these domains.
我们探索了一种新型的 MOF-on-MOF 杂化材料(Zn-BTEC@ZIF-8)的制备方法。这种制备的杂化材料作为容器,能够通过氢键和π-π相互作用将盐酸四环素分子吸附到其骨架中。这种现象引发了聚集诱导发射(AIE)效应,导致形成发光体。发现组氨酸与 MOF 的配位会破坏原本稳定的 MOF-on-MOF 结构。这种破坏导致原本稳定的 MOF-on-MOF 结构从聚集状态分裂成碎片,导致荧光团的荧光猝灭。值得注意的是,这种复合材料的荧光猝灭效率超过了单层金属-有机骨架(MOF)沸石咪唑骨架-8(ZIF-8)或均苯三甲酸锌基 MOF(Zn-BTEC),能够更灵敏地检测组氨酸。在这项研究中,我们构建了一种无标记荧光传感器,专门用于检测组氨酸,利用 MOF-on-MOF 结构固有的 AIE 效应和盐酸四环素(Tet)的存在。该传感器表现出快速、直接和稳定的响应,能够在 20 分钟内检测到组氨酸。值得注意的是,该传感器的检测范围为 2-400 mg L,检测限低至 1.458 mg L。该传感器在河水和各种鱼类中定量检测组氨酸的实际应用表现出稳健的性能,确保了实际样品的可靠性和准确性。它在食品安全和环境监测中的潜在应用显而易见,使其成为解决这些领域中与组氨酸相关挑战的有价值工具。