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Highly Photoluminescent and Stable N-Doped Carbon Dots as Nanoprobes for Hg2+ Detection

机译:高度光致发光且稳定的N掺杂碳点作为用于检测Hg2 +的纳米探针

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摘要

We developed a microreactor with porous copper fibers for synthesizing nitrogen-doped carbon dots (N-CDs) with a high stability and photoluminescence (PL) quantum yield (QY). By optimizing synthesis conditions, including the reaction temperature, flow rate, ethylenediamine dosage, and porosity of copper fibers, the N-CDs with a high PL QY of 73% were achieved. The PL QY of N-CDs was two times higher with copper fibers than without. The interrelations between the copper fibers with different porosities and the N-CDs were investigated using X-ray photoelectron spectroscopy (XPS) and Fourier Transform infrared spectroscopy (FTIR). The results demonstrate that the elemental contents and surface functional groups of N-CDs are significantly influenced by the porosity of copper fibers. The N-CDs can be used to effectively and selectively detect Hg2+ ions with a good linear response in the 0~50 μM Hg2+ ions concentration range, and the lowest limit of detection (LOD) is 2.54 nM, suggesting that the N-CDs have great potential for applications in the fields of environmental and hazard detection. Further studies reveal that the different d orbital energy levels of Hg2+ compared to those of other metal ions can affect the efficiency of electron transfer and thereby result in their different response in fluorescence quenching towards N-CDs.
机译:我们开发了带有多孔铜纤维的微反应器,用于合成具有高稳定性和光致发光(PL)量子产率(QY)的氮掺杂碳点(N-CD)。通过优化合成条件,包括反应温度,流速,乙二胺用量和铜纤维的孔隙率,可以实现PL QY高达73%的N-CD。使用铜纤维的N-CD的PL QY比不使用铜纤维的PL QY高两倍。利用X射线光电子能谱(XPS)和傅立叶变换红外光谱(FTIR)研究了具有不同孔隙率的铜纤维与N-CD的相互关系。结果表明,N-CD的元素含量和表面官能团受铜纤维孔隙率的显着影响。 N-CDs可用于在0〜50μMHg 2 + 离子浓度范围内有效,选择性地检测具有良好线性响应的Hg 2 + 离子,并且最低检测限(LOD)为2.54 nM,这表明N-CD在环境和危害检测领域具有巨大的应用潜力。进一步的研究表明,与其他金属离子相比,Hg 2 + 的d轨道能级不同会影响电子转移的效率,从而导致它们在对N-CD的荧光猝灭中的响应不同。

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