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Fluorescence 'Turn On' Detection of Mercuric Ion Based on Bis(dithiocarbamato)copper(II) Complex Functionalized Carbon Nanodots

机译:基于双(二硫代氨基甲酸酯)铜(II)络合功能化碳纳米点的荧光“打开”汞离子检测

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A new "turn on" fluorescence nanosensor for selective Hg~(2+) determination is reported based on bis-(dithiocarbamato)copper(II) functionalized carbon nanodots (CuDTC_2-CDs). The CuDTC_2 complex was conjugated to the prepared amine-coated CDs by the condensation of carbon disulfide onto the nitrogen atoms in the surface amine groups, followed by the coordination of copper(II) to the resulting dithiocarbamate groups (DTC) and finally by the additional coordination of ammonium N-(dithicarbaxy) sarcosine (DTCS) to form the CuDTC_2-complexing CDs. The CuDTC_2 complex at surface strongly quenched the bright-blue fluorescence of the CDs by a combination of electron transfer and energy transfer mechanism. Hg~(2+) could immediately switch on the fluorescence of the CuDTC_2-CDs by promptly displacing the Cu~(2+) in the CuDTC_2 complex and thus shutting down the energy transfer pathway, in which the sensitive limit for Hg~(2+) as low as 4 ppb was reached. Moreover, a paper-based sensor has been fabricated by printing the CuDTC_2-CDs probe ink on a piece of cellulose acetate paper using a commercial inkjet printer. The fluorescence "turn on" on the paper provided the most conveniently visual detection of aqueous Hg~(2+) ions by the observation with naked eye. The very simple and effective strategy reported here facilitates the development of portable and reliable fluorescence nanosensors for the determination of Hg~(2+) in real samples.
机译:基于双-(二硫代氨基甲酸酯)铜(II)功能化的碳纳米点(CuDTC_2-CDs)报道了一种用于选择性测定Hg〜(2+)的新型“开启”荧光纳米传感器。通过将二硫化碳缩合到表面胺基团上的氮原子上,然后将铜(II)与所得二硫代氨基甲酸酯基团(DTC)配位,将CuDTC_2配合物与制备的胺包被的CD缀合。 N-二硫代氨基甲酸肌氨酸铵(DTCS)的配位形成CuDTC_2复合CD。通过电子转移和能量转移机制的结合,表面的CuDTC_2配合物强烈淬灭了CD的亮蓝色荧光。 Hg〜(2+)可以通过迅速置换CuDTC_2络合物中的Cu〜(2+)从而关闭能量传递途径来立即打开CuDTC_2-CDs的荧光,其中Hg〜(2 +)低至4 ppb。此外,已经通过使用商用喷墨打印机将CuDTC_2-CDs探针墨水打印在一张醋酸纤维素纸上来制造纸基传感器。通过肉眼观察,纸上的荧光“打开”提供了最方便的视觉检测Hg〜(2+)水溶液离子。本文报道的非常简单和有效的策略促进了便携式和可靠的荧光纳米传感器的发展,用于测定实际样品中的Hg〜(2+)。

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