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Ultrasensitive Quantum Dot Fluorescence quenching Assay for Selective Detection of Mercury Ions in Drinking Water

机译:饮用水中汞离子的超灵敏量子点荧光猝灭法

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摘要

Mercury is one of the most acutely toxic substances at trace level to human health and living thing. Developing a rapid, cheap and water soluble metal sensor for detecting mercury ions at ppb level remains a challenge. Herein, a metal sensor consisting of MPA coated Mn doped ZnSe/ZnS colloidal nanoparticles was utilized to ultrasensitively and selectively detect Hg2+ ions with a low detection limit (0.1 nM) over a dynamic range from 0 to 20 nM. According to strong interaction between thiol(s) and mercury ions, mercaptopropionic acid (MPA) was used as a highly unique acceptor for mercury ions in the as-obtained ultrasensitive sensor. In the presence of mercury ions, colloidal nanoparticles rapidly agglomerated due to changes of surface chemical properties, which results in severe quenching of fluorescent intensity. Meanwhile, we find that the original ligands are separated from the surface of colloidal nanoparticles involving strongly chelation between mercury ion and thiol(s) proved by controlled IR analysis. The result shows that the QD-based metal ions sensor possesses satisfactory precision, high sensitivity and selectivity, and could be applied for the quantification analysis of real samples.
机译:汞是对人类健康和生物微量的最剧毒物质。开发一种快速,廉价且水溶性的金属传感器以检测ppb级的汞离子仍然是一个挑战。本文中,由MPA涂层的Mn掺杂的ZnSe / ZnS胶态纳米颗粒组成的金属传感器被用于超灵敏和选择性地检测Hg 2 + 离子,其检测限为0至0的动态范围(0.1 nM)。 20 nM。根据硫醇与汞离子之间的强相互作用,巯基丙酸(MPA)被用作获得的超灵敏传感器中汞离子的高度独特受体。在存在汞离子的情况下,由于表面化学性质的变化,胶体纳米颗粒会迅速团聚,从而导致荧光强度严重淬灭。同时,我们发现原始的配体从胶体纳米颗粒表面分离,这涉及到汞离子与硫醇之间的强烈螯合,这是通过受控红外分析证明的。结果表明,基于量子点的金属离子传感器具有令人满意的精度,高灵敏度和选择性,可用于实际样品的定量分析。

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