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用于定量检测铜离子的N-乙酰-L-半胱氨酸包覆的锰掺杂硫化镉量子点的合成

Synthesis of N-acetyl-l-cysteine capped Mn:doped CdS quantum dots for quantitative detection of copper ions.

作者信息

Yang Xiupei, Jia Zhihui, Cheng Xiumei, Luo Na, Choi Martin M F

机构信息

College of Chemistry and Chemical Engineering, Chemical Synthesis and Pollution Control Key Laboratory of Sichuan Province, China West Normal University, Nanchong 637000, PR China.

College of Chemistry and Chemical Engineering, Chemical Synthesis and Pollution Control Key Laboratory of Sichuan Province, China West Normal University, Nanchong 637000, PR China.

出版信息

Spectrochim Acta A Mol Biomol Spectrosc. 2018 Jun 15;199:455-461. doi: 10.1016/j.saa.2018.04.003. Epub 2018 Apr 6.

Abstract

In this work, a new assembled copper ions sensor based on the Mn metal-enhanced fluorescence of N-acetyl-l-cysteine protected CdS quantum dots (NAC-Mn:CdS QDs) was developed. The NAC and Mn:CdS QDs nanoparticles were assembled into NAC-Mn:CdS QDs complexes through the formation of CdS and MnS bonds. As compared to NAC capped CdS QDs, higher fluorescence quantum yields of NAC-Mn:CdS QDs was observed, which is attributed to the surface plasmon resonance of Mn metal. In addition, the fluorescence intensity of as-formed complexes weakened in the presence of copper ions. The decrease in fluorescence intensity presented a linear relationship with copper ions concentration in the range from 0.16-3.36μM with a detection limit of 0.041μM . The characterization of as-formed QDs was analyzed by photoluminescence (PL), ultra violet-visible (UV-vis), X-ray diffraction (XRD), Fourier transform infrared spectroscopy (FTIR) and energy dispersive spectroscopy (EDS) respectively. Furthermore, the recoveries and relative standard deviations of Cu spiked in real water samples for the intra-day and inter-day analyses were 88.20-117.90, 95.20-109.90, 0.80-5.80 and 1.20-3.20%, respectively. Such a metal-enhanced QDs fluorescence system may have promising application in chemical and biological sensors.

摘要

在本工作中,基于N-乙酰-L-半胱氨酸保护的硫化镉量子点(NAC-Mn:CdS QDs)的锰金属增强荧光,开发了一种新型组装铜离子传感器。通过形成硫化镉和硫化锰键,将NAC和Mn:CdS QDs纳米颗粒组装成NAC-Mn:CdS QDs复合物。与NAC包覆的硫化镉量子点相比,观察到NAC-Mn:CdS QDs具有更高的荧光量子产率,这归因于锰金属的表面等离子体共振。此外,在铜离子存在下,所形成复合物的荧光强度减弱。荧光强度的降低与0.16 - 3.36μM范围内的铜离子浓度呈线性关系,检测限为0.041μM。分别通过光致发光(PL)、紫外可见(UV-vis)、X射线衍射(XRD)、傅里叶变换红外光谱(FTIR)和能量色散光谱(EDS)对所形成量子点进行表征。此外,在日内和日间分析中,实际水样中加标铜的回收率和相对标准偏差分别为88.20 - 117.90%、95.20 - 109.90%、0.80 - 5.80%和1.20 - 3.20%。这种金属增强量子点荧光系统在化学和生物传感器中可能具有广阔的应用前景。

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