Key Laboratory of Eco-Environments in Three Gorges Reservoir Region (Ministry of Education), School of Chemistry and Chemical Engineering, Southwest University, Chongqing, 400715, PR China.
Key Laboratory of Eco-Environments in Three Gorges Reservoir Region (Ministry of Education), School of Chemistry and Chemical Engineering, Southwest University, Chongqing, 400715, PR China.
J Hazard Mater. 2019 Aug 15;376:170-177. doi: 10.1016/j.jhazmat.2019.05.021. Epub 2019 May 13.
Sensitive and selective determination of mercury ion (Hg) is critical for human health and environmental monitoring. Herein we construct an effective ratiometric fluorescent sensing platform by combining green fluorescent polymer carbon dots (PCDs) and red fluorescent tetraphenylporphyrin tetrasulfonic acid hydrate (TPPS) for specific and visual detection of Hg. The fluorescence of PCDs can be quenched by TPPS through inner filter effect (IEF). In the presence of both Mn and Hg, however, Hg can expedite the complexation of TPPS and Mn, which causes the decrease in both fluorescence and absorption of TPPS, accompanied by the fluorescence recovery of PCDs due to the subdued IFE between TPPS and PCDs. Based on the change of fluorescence signal, a ratiometric fluorescent sensing platform is constructed for specific and visual detection of Hg. The proposed approach presents a fine linear range for Hg over the range of 10-200 nM with a detection limit of 0.038 nM. Moreover, an easily distinguishable fluorescence color change from pink to green with the increase of Hg concentration can be observed by the naked eye under a UV lamp. Such a simple and effective method shows great potential for visual sensing of Hg in on-site and resource-limited settings.
灵敏和选择性地测定汞离子(Hg)对于人类健康和环境监测至关重要。在此,我们构建了一个有效的比率荧光传感平台,将绿色荧光聚合物碳点(PCDs)和红色荧光四苯基卟啉四磺酸水合物(TPPS)结合起来,用于特异性和可视化检测 Hg。PCDs 的荧光可以通过内滤效应(IEF)被 TPPS 猝灭。然而,在存在 Mn 和 Hg 的情况下,Hg 可以加速 TPPS 和 Mn 的络合,导致 TPPS 的荧光和吸收都降低,同时由于 TPPS 和 PCDs 之间的内滤效应减弱,PCDs 的荧光恢复。基于荧光信号的变化,构建了一个用于特异性和可视化检测 Hg 的比率荧光传感平台。该方法在 10-200 nM 的范围内对 Hg 呈现出良好的线性范围,检测限为 0.038 nM。此外,在紫外灯下,可以通过肉眼观察到随着 Hg 浓度的增加,荧光颜色从粉红色变为绿色,具有明显的可分辨变化。这种简单有效的方法在现场和资源有限的环境中对 Hg 的可视化传感具有很大的潜力。