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一种用于追踪羰基化合物的新型溶胶-凝胶荧光传感器。

A new sol-gel fluorescent sensor to track carbonyl compounds.

作者信息

Carballido Laura, Bou-Maroun Elias, Weber Guy, Bezverkhyy Igor, Karbowiak Thomas

机构信息

Univ. Bourgogne Franche-Comté, Institut Agro, Univ. de Bourgogne, INRAE, UMR PAM 1517, 1 Esplanade Erasme, 21000, Dijon, France.

Laboratoire Interdisciplinaire Carnot de Bourgogne, UMR 6303 CNRS-Université de Bourgogne Franche-Comté, 9 avenue Alain Savary, BP 47870, 21078, Dijon, Cedex, France.

出版信息

Talanta. 2024 Nov 1;279:126569. doi: 10.1016/j.talanta.2024.126569. Epub 2024 Jul 18.

Abstract

Carbonyl compounds are ubiquitous quality trackers that provide information about food product degradation as well as air and water pollution levels. In addition, they are used as biomarkers for medical diagnoses. With more user-friendly sensors, their fast detection and easy quantification are highly relevant. The synthesis, characterization, and performance assessment of a new sensor based on aniline fluorescence to monitor carbonyls in real time is reported. A cost-effective synthesis using a straightforward sol-gel process led to the construction of a nontoxic silica-based material with high porosity, which can be used with almost no sample preparation. The material exhibits a rapid (< 1 min) fluorescence decrease upon interaction with carbonyl groups. The limit of detection is as low as ca. 5 × 10 mol·L for hexanal, while fluorescence extinction occurs at much higher concentrations (5 × 10·mol L), which enables the sensor to be used with a very broad range of detection. Real-time monitoring is possible since the fluorescence loss correlates with the concentration of carbonyl moieties. The performance was validated in simulating as well as in real media, making this sensor suitable for use in a wide range of applications.

摘要

羰基化合物是普遍存在的质量追踪指标,可提供有关食品降解以及空气和水污染水平的信息。此外,它们还用作医学诊断的生物标志物。借助更用户友好的传感器,对其进行快速检测和轻松定量具有高度相关性。本文报道了一种基于苯胺荧光实时监测羰基的新型传感器的合成、表征及性能评估。采用简单的溶胶 - 凝胶工艺进行经济高效的合成,制备出了一种具有高孔隙率的无毒二氧化硅基材料,几乎无需样品制备即可使用。该材料与羰基相互作用时荧光迅速降低(<1分钟)。己醛的检测限低至约5×10⁻⁹ mol·L⁻¹,而在高得多的浓度(5×10⁻⁶ mol·L⁻¹)时发生荧光猝灭,这使得该传感器能够在非常宽的检测范围内使用。由于荧光损失与羰基部分的浓度相关,因此可以进行实时监测。该传感器在模拟介质和实际介质中均验证了性能,适用于广泛的应用。

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