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A smartphone-assisted fluorescent sensing platform for ochratoxin A using Mn-doped CsPbBr perovskite quantum dots embedded in the mesoporous silica as a ratiometric probe. | LitMetric

A smartphone-assisted fluorescent sensing platform for ochratoxin A using Mn-doped CsPbBr perovskite quantum dots embedded in the mesoporous silica as a ratiometric probe.

Spectrochim Acta A Mol Biomol Spectrosc

Cellular and Molecular Research Center, Cellular and Molecular Medicine Institute, Urmia University of Medical Sciences, Urmia 5714783734, Iran.

Published: May 2024

Food sources are susceptible to contamination with ochratoxin A (OTA), which is a serious threat to human health. Thus, the construction of novel, simple sensing platforms for OTA monitoring is of utmost need. Manganese-doped lead halide perovskite quantum dots encapsulated with mesoporous SiO (Mn-CsPbBr QDs@SiO) were prepared here and used as a ratiometric fluorescent probe for OTA. Mn-CsPbBr QDs, synthesized at room temperature, exhibit dual emission with maximum wavelengths of 440 and 570 nm and, when embedded in the SiO layer, produce a stable and robust photoluminescence signal. By adding OTA to the probe, emission at 440 nm increases while emission at 570 nm decreases, so a ratiometric response is obtained. Experimental variables affecting the probe signal were studied and optimized and the mechanism of sensing was discussed. This ratiometric sensor demonstrated excellent selectivity and low detection limit (4.1 ng/ml) as well as a wide linear range from 5.0 to 250 ng/ml for OTA. A simple portable smartphone-based device was also constructed and applied for the fluorescence assay. With different OTA concentrations, the multicolor transition from pink to blue under a UV lamp led to simple visual and smartphone-assisted sensing of OTA by using a color analyzing application. Satisfactory recoveries in black tea, coffee, moldy fig and flour samples confirmed the reliability of the assay. The accuracy of the probe was proved by comparison of the results with high-performance liquid chromatography (HPLC).

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Source
http://dx.doi.org/10.1016/j.saa.2024.124083DOI Listing

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