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A novel material for the detection and removal of mercury(II) based on a 2,6-bis(2-thienyl)pyridine receptor

机译:基于2,6-双(2-噻吩基)吡啶受体检测和去除汞(II)的新材料

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摘要

Here we report on the strong potential for mercury Hg(II) detection and uptake demonstrated by a 2,6-bis(2-thienyl) pyridine molecular receptor (L). The coordination affinity of L with Hg(II) was studied experimentally and computationally. Based on the results of H-1 NMR and Density Functional Theory (DFT), L binds to Hg(II) via SNS chelation. L demonstrates a strong ability to perform as a single excitation (330 nm)-single emission (413 nm) selective `` turn off'' fluorimetric sensor for Hg2+ ions. Furthermore, time-dependent DFT calculations predicted and experimental studies confirmed the ability of this system to act as a single excitation (385 nm)-dual emission ratiometric Hg(II) sensor with two welldefined emission bands, "turn off" at 413 nm and "turn on" at 563 nm. Through detailed studies at both emission wavelengths (413 and 563 nm) we show the ability of the ligand to effectively detect mercury ions and demonstrate the potential of the system to differentiate Hg2+ from Zn2+, Cd2+, Cu2+, Cr3+, Co2+, Ru3+, and Fe2+ ions with minimum to no interference. Chemical anchoring of L via siloxane chemistry on surface-enhanced magnetite/titania core-shell nanospheres results in a novel material with strong potential for Hg(II) uptake from aqueous and organic solutions. The magnetite core allows fast removal of the nanoparticles after the reaction by applying an external magnetic field. The resulting nanomaterial demonstrates promising performance as a single excitation (330 nm)-single emission (413 nm) sensor for Hg2+ ions. The presence of iron ions in analytical matrices leads to interference, influencing the fluorimetric detection of Hg2+. To address this challenge, the material can be deposited on a glassy carbon electrode where L-complexed iron and mercury ions can be electrochemically resolved.
机译:在这里,我们报告了2,6-双(2-噻吩基)吡啶分子受体(L)所证明的汞Hg(ii)检测和摄取的强潜力。通过实验和计算研究了L与Hg(II)的协调亲和力。基于H-1 NMR和密度官能理论(DFT)的结果,L通过SNS螯合结合Hg(II)。 l说明了作为单一激励(330nm)的能力,用于发射(413nm)选择性````关闭'的HG2 +离子的荧光传感器。此外,预测和实验研究的时间依赖性DFT计算证实了该系统用作单一激励(385nm)的发射量度计的能力(385nm) - 具有两个良好的发射带,“关闭”在413 nm和“打开”563 nm。通过对发射波长(413和563nm)的详细研究,我们展示了配体能够有效地检测汞离子,并证明系统的潜力与Zn2 +,CD2 +,Cu2 +,Cr3 +,CO2 +,Ru3 +和Fe2 +分化Hg2 +。离子最小无干扰。 L通过硅氧烷化学在表面增强磁铁矿/二氧化钛核 - 壳纳米球中的化学锚固导致一种新的材料,其具有强大的HG(II)来自水性和有机溶液的吸收。磁铁矿芯通过施加外部磁场,允许在反应后快速去除纳米颗粒。所得的纳米材料表明了作为HG2 +离子的单一激发(330nm)的单一激发(330nm)传感器的有希望的性能。分析矩阵中的铁离子的存在导致干扰,影响HG2 +的荧光检测。为了解决这一挑战,可以将材料沉积在玻璃状碳电极上,其中可以电化学解析L-复合的铁和汞离子。

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