Chu Hongtao, Yao Dong, Chen Jiaqi, Yu Miao, Su Liqiang
College of Chemistry and Chemical Engineering, Qiqihaer University, Qiqihaer161006, China.
ACS Omega. 2020 Apr 16;5(16):9558-9565. doi: 10.1021/acsomega.0c00861. eCollection 2020 Apr 28.
Quantum dots (QDs) are a class of zero-dimensional nanocrystal materials, whose lengths are limited to 2-10 nm. Their unique advantages such as wide excitation spectra, narrow emission spectra, and high quantum yield make their application possible in fluorescence sensing, wherein QDs such as CdSe, CdTe, and CdS are used. Indeed, QDs have a wide range of applications in fluorescence sensing, and there have been many reports of applications based on QDs as ion probes. The emission spectra of QDs can be adjusted by changing the size of the QDs or doping them with other ions/elements. However, the high toxicity of Cd and the poor anti-interference ability of single-emission fluorescent probes greatly limit the applications of QDs in many fields. In this paper, ZnS QDs are doped with the rare-earth element Ce to form a low-toxicity double-emission ratiometric fluorescent sensor, ZnS:Ce, for Hg detection. The results of transmission electron microscopy (TEM), X-ray diffractometry, X-ray photoelectron spectroscopy, and optical spectroscopy show that ZnS:Ce QDs were successfully synthesized. Under the optimal conditions, the concentration of Hg was in the range of 10-100 μM, which had a linear relationship with the fluorescence intensity of the ZnS:Ce QDs: the linear correlation coefficient was 0.998, and the detection limit was 0.82 μM L. In addition, the fluorescent sensor had good selectivity for Hg, and it was successfully applied to the detection of Hg in laboratory water samples.
量子点(QDs)是一类零维纳米晶体材料,其长度限制在2-10纳米。它们具有诸如宽激发光谱、窄发射光谱和高量子产率等独特优势,这使得它们在荧光传感中具有应用可能性,其中使用了诸如CdSe、CdTe和CdS等量子点。事实上,量子点在荧光传感中有广泛应用,并且有许多基于量子点作为离子探针的应用报道。量子点的发射光谱可以通过改变量子点的尺寸或用其他离子/元素对其进行掺杂来调节。然而,Cd的高毒性以及单发射荧光探针较差的抗干扰能力极大地限制了量子点在许多领域的应用。在本文中,ZnS量子点被稀土元素Ce掺杂,形成了一种用于Hg检测的低毒性双发射比率荧光传感器ZnS:Ce。透射电子显微镜(TEM)、X射线衍射、X射线光电子能谱和光谱学的结果表明ZnS:Ce量子点已成功合成。在最佳条件下,Hg的浓度在10-100μM范围内,与ZnS:Ce量子点的荧光强度呈线性关系:线性相关系数为0.998,检测限为0.82μM L。此外,该荧光传感器对Hg具有良好的选择性,并成功应用于实验室水样中Hg的检测。