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Biosynthesized Highly Stable Au/C Nanodots: Ideal Probes for the Selective and Sensitive Detection of Hg2+ Ions

机译:生物合成的高度稳定的Au / C纳米点:选择性和灵敏检测Hg2 +离子的理想探针

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摘要

The enormous ongoing industrial development has caused serious water pollution which has become a major crisis, particularly in developing countries. Among the various water pollutants, non-biodegradable heavy metal ions are the most prevalent. Thus, trace-level detection of these metal ions using a simple technique is essential. To address this issue, we have developed a fluorescent probe of Au/C nanodots (GCNDs-gold carbon nanodots) using an eco-friendly method based on an extract from waste onion leaves (Allium cepa-red onions). The leaves are rich in many flavonoids, playing a vital role in the formation of GCNDs. Transmission electron microscopy (TEM) and Scanning transmission electron microscopy-Energy-dispersive X-ray spectroscopy (STEM-EDS) elemental mapping clearly indicated that the newly synthesized materials are approximately 2 nm in size. The resulting GCNDs exhibited a strong orange fluorescence with excitation at 380 nm and emission at 610 nm. The GCNDs were applied as a fluorescent probe for the detection of Hg2+ ions. They can detect ultra-trace concentrations of Hg2+ with a detection limit of 1.3 nM. The X-ray photoelectron spectroscopy results facilitated the identification of a clear detection mechanism. We also used the new probe on a real river water sample. The newly developed sensor is highly stable with a strong fluorescent property and can be used for various applications such as in catalysis and biomedicine.
机译:持续不断的巨大工业发展已导致严重的水污染,这已成为重大危机,特别是在发展中国家。在各种水污染物中,不可生物降解的重金属离子最为普遍。因此,使用简单的技术对这些金属离子进行痕量检测是必不可少的。为了解决这个问题,我们基于废洋葱叶(葱属洋葱)的提取物,采用了一种生态友好的方法,开发了一种Au / C纳米点(GCNDs-金碳纳米点)荧光探针。叶子富含许多类黄酮,在GCND的形成中起着至关重要的作用。透射电子显微镜(TEM)和扫描透射电子显微镜-能量色散X射线光谱(STEM-EDS)元素图谱清楚地表明,新合成的材料尺寸约为2 nm。所得的GCND显示出强橙色荧光,在380nm处激发并且在610nm处发射。 GCNDs作为荧光探针用于检测Hg 2 + 离子。他们可以检测到痕量的Hg 2 + ,检测限为1.3 nM。 X射线光电子能谱的结果有助于明确检测机制的鉴定。我们还在真实河水样本上使用了新探针。新开发的传感器具有高度的稳定性,并具有很强的荧光特性,可用于催化和生物医学等各种应用。

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