荧光
水溶液中的金属离子
检出限
材料科学
水溶液
复合数
钙黄绿素
离子
纳米复合材料
纳米技术
线性范围
多孔性
化学工程
金属有机骨架
金属
选择性
基质(化学分析)
纳米颗粒
作者
Susan Sarvarian,Moslem Mansour Lakouraj,Rafieh-Sadat Norouzian,Mohammad Javad Chaichi
出处
期刊:RSC Advances
[Royal Society of Chemistry]
日期:2026-01-01
卷期号:16 (12): 11184-11196
摘要
The pervasive contamination of water resources by heavy metal ions poses serious threats to environmental safety and human health, creating an urgent demand for simple, sensitive, and selective sensing platforms. Herein, a robust polyurethane foam (PUF)-supported UiO-66-NH2-calcein composite is developed as a solid-state fluorescent sensor for the selective detection of Cu2+ ions in aqueous media. The immobilization of calcein within the porous UiO-66-NH2 framework and its subsequent integration into a PUF matrix provides a stable, highly accessible, and reusable fluorescence platform. Structural and spectroscopic characterization confirms the successful formation and homogeneous distribution of the composite components. Fluorescence screening against a series of metal ions demonstrates that, although several ions can interact with the sensor, a markedly enhanced and selective fluorescence response toward Cu2+ is achieved under mildly acidic conditions (pH 5). The sensor exhibits a linear fluorescence response toward Cu2+ over the micromolar concentration range with a low detection limit of 0.011 µM. The composite also exhibits mechanical integrity and operational reusability, with no significant signal loss. The foam-based architecture enables rapid mass transfer, improved light penetration, and convenient handling, making the platform well-suited for portable and on-site water analysis. This work presents an effective strategy for constructing MOF-polymer fluorescent composites for selective Cu2+ sensing and practical environmental monitoring. The PUF/UIO-66-NH-calcein nanocomposite exhibits remarkable fluorescence sensitivity toward multiple metal ions at pH 7, achieving ultra-low limits of detection of 0.0013 µM for As3+, 0.0049 µM for Cd2+, 0.009 µM for Zn2+, 0.0049 µM for Cu2+, and 0.0081 µM for Ca2+, while maintaining stable performance under aqueous conditions.
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