Lin Yao, Ye Simin, Tian Jinxiao, Leng Anqin, Deng Yurong, Zhang Jinyi, Zheng Chengbin
West China School of Basic Medical Sciences & Forensic Medicine, Sichuan University, Chengdu, Sichuan 610041, China.
Key Laboratory of Green Chemistry & Technology of MOE, College of Chemistry, Sichuan University, Chengdu, Sichuan 610064, China.
J Hazard Mater. 2023 Oct 5;459:132201. doi: 10.1016/j.jhazmat.2023.132201. Epub 2023 Aug 1.
Dissolved sulfide tends to species transformation and loss upon leaving the matrix, thus the development of a practical on-site determination of sulfide is crucial for environmental monitoring and human health. In this work, a novel paper-based ratiometric fluorescence sensor was developed for the field analysis of sulfide, which system was constructed by the inner filter effect (IFE) of CdS quantum dots (QDs) toward carbon dots (C-dots). Instead of an aqueous phase system, the conversion of sulfide to its hydride would induce the in-situ formation of CdS QDs on the paper, which acted as an energy acceptor to quench the emission of C-dots, leading to a variation of ratiometric fluorescence from blue to yellow with the increasing concentration of sulfide. Moreover, we proposed a smartphone-based fluorescence capture device integrated with a programmed Python program, accomplishing both color recognition and accurate detection of sulfide. Under the optimal condition, this ratiometric fluorescence sensor allowed for the on-site analysis of sulfide with a limit of detection of 0.05 μM. The accuracy of the sensor was validated via the successful field analysis of environmental water samples with satisfactory recoveries. Compared to other fluorescence methods used for sulfide analysis, this developed system retains the advantages of label-free, low-cost, ease of operation, and miniaturization, showing great potential for the measurement of sulfide on-site, as well as environmental monitoring.
溶解的硫化物离开基质后容易发生物种转化和损失,因此开发一种实用的硫化物现场测定方法对于环境监测和人类健康至关重要。在这项工作中,开发了一种新型的基于纸张的比率荧光传感器用于硫化物的现场分析,该系统是通过硫化镉量子点(QDs)对碳点(C-dots)的内滤效应(IFE)构建的。与水相系统不同,硫化物转化为其氢化物会诱导在纸张上原位形成硫化镉量子点,其作为能量受体淬灭碳点的发射,导致随着硫化物浓度的增加,比率荧光从蓝色变为黄色。此外,我们提出了一种基于智能手机的荧光捕获设备,并集成了一个用Python编写的程序,实现了对硫化物的颜色识别和准确检测。在最佳条件下,这种比率荧光传感器能够对硫化物进行现场分析,检测限为0.05 μM。通过对环境水样的成功现场分析和令人满意的回收率验证了该传感器的准确性。与用于硫化物分析的其他荧光方法相比,该开发系统具有无标记、低成本、操作简便和小型化的优点,在硫化物的现场测量以及环境监测方面显示出巨大潜力。