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基于荧光碳点的传感体系用于水溶液中环丙沙星的检测。

Fluorescent carbon dots based sensing system for detection of enrofloxacin in water solutions.

机构信息

College of Chemistry, Liaoning University, Shenyang 110036, PR China.

Department of Chemistry, Shenyang Medical College, Shenyang 110034, PR China.

出版信息

Spectrochim Acta A Mol Biomol Spectrosc. 2019 Aug 5;219:15-22. doi: 10.1016/j.saa.2019.02.017. Epub 2019 Feb 11.

Abstract

Enrofloxacin (ENR) is one of the environmental pollutants need to remove in many wastewater treatment processes. Traditional methods for measuring ENR are often complex and time-consuming. Due to their low cost and high efficiency, fluorescent carbon dots can be used for detecting many pharmaceuticals. In this contribution, nitrogen doped fluorescent carbon dots (N-CDs) were firstly synthesized with a fluorescence quantum yield of 20.5%. The N-CDs can emit strong blue fluorescence when excited at 368 nm and there exist a large amount of carboxyl, hydroxyl and amine groups on their surfaces. In addition, the fluorescence of N-CDs could be quenched in the presence of Cu, which could be gradually restored upon adding ENR. Thereby, a rapid and sensitive fluorescent sensing strategy based on the fluorescence recovery of the N-CDs-Cu system was designed for selective detection of ENR. The possible sensing mechanism was also proposed in terms of the results of resonance Rayleigh scattering, UV-vis absorption and Fourier transform infrared (FITR) spectra. Under the optimal condition, a good linear relationship was obtained for ENR determination with concentrations ranging from 1.0 to 15.0 μg·mL and the detection limit of 0.16 μg·mL was achieved. Finally the proposed sensing system was applied for the detection of ENR in real water samples with satisfactory results.

摘要

恩诺沙星(ENR)是许多废水处理过程中需要去除的环境污染物之一。传统的 ENR 测量方法通常比较复杂且耗时。由于荧光碳点具有成本低、效率高的特点,可用于检测许多药物。本研究首次用氮掺杂荧光碳点(N-CDs)合成,其荧光量子产率为 20.5%。N-CDs 在 368nm 激发下可发出强蓝色荧光,其表面存在大量的羧基、羟基和胺基。此外,在 Cu 的存在下,N-CDs 的荧光可以被猝灭,而加入 ENR 后可以逐渐恢复。因此,基于 N-CDs-Cu 体系荧光恢复的快速灵敏荧光传感策略被设计用于选择性检测 ENR。根据共振瑞利散射、紫外可见吸收和傅里叶变换红外(FTIR)光谱的结果,提出了可能的传感机制。在最佳条件下,ENR 的测定浓度范围为 1.0 至 15.0μg·mL,检测限为 0.16μg·mL。最后,该传感系统应用于实际水样中 ENR 的检测,结果令人满意。

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