Tri-emissive red-green dye-encapsulated UiO-66-Ph as a white-light emission fluorescence sensor for Fe3+ and Cr2O72− detection in environmental water samples

化学 荧光 白光 光化学 核化学 光电子学 光学 物理
作者
Ye Wang,Jinfeng Mo,Siyu Lei,Zijun Guo,Dashu Chen,Pei Xie,Liu Yang
出处
期刊:Spectrochimica Acta Part A: Molecular and Biomolecular Spectroscopy [Elsevier BV]
卷期号:339: 126301-126301 被引量:5
标识
DOI:10.1016/j.saa.2025.126301
摘要

Triply-emissive C6&RhB@UiO-66-Ph for colorimetric detection of Fe 3+ and Cr 2 O 7 2− in environmental water samples. • A series of triple-emitting dye@Zr-MOFs were synthesized through in-situ encapsulation. • The composite achieved white-light emitting with CIE coordinates at (0.32, 0.32). • The composite selectively detected Fe 3+ and Cr 2 O 7 2- with the fluorescence quenching and fluorescence colorimetry. • The sensing mechanism involved resonance energy transfer and electron transfer process. • A paper-based fluorescent sensing device was developed for portable fluorescence detection. Excessive inorganic ions in water sources can accumulate abnormally or be deficient in the human body, leading to serious health risks, such as liver and kidney damage or even cancer. Therefore, efficient and accurate detection of excessive inorganic ions in water is urgently needed. Using an in situ encapsulation method under solvothermal conditions, we develop a series of triple-emission fluorescent sensors, C6&RhB@UiO-66-Ph (C&R@U), by encapsulating green-emitting Coumarin 6 (C6) and red-emitting Rhodamine B (RhB) into a blue-emitting UiO-66-Ph MOF with 1,4-H 2 NDC as the ligand. Among them, C&R@U3 exhibits white-light emission with a CIE coordinate of (0.32, 0.32) and is used for the detection of Fe 3+ ions and Cr 2 O 7 2− ions in water. When the C&R@U3 fluorescent probe interacts with target ions, the three emission peaks of the probe are quenched due to the resonance energy transfer effect, resulting in significant shifts in its CIE coordinates compared to other ions. The fluorescence intensity of the C&R@U3 probe demonstrates excellent linearity with Fe 3+ ion concentrations (0–0.6 mM) and Cr 2 O 7 2− ion concentrations (0–0.1 mM), with detection limits of 0.71 μM and 16.9 nM, respectively. Experiments with real-world water samples and portable fluorescence test papers validate the practical applicability of C&R@U3, revealing its great potential in on-site inorganic ion detection. This work provides experimental basis and theoretical foundation for the development of new multifunctional fluorescent sensors, promoting the application of MOFs in environmental monitoring.
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