n掺杂石墨烯量子点材料的合成及Fe3+离子检测能力

Kiem Do Van, Dung Nguyen Tien, Nguyen Le Huy, Phuong Bui Thi Lan, Van Hoang Nhu
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摘要

本研究采用水热法制备了氮掺杂石墨烯量子点(N-GQDs)。通过高分辨透射电镜(HR-TEM)和紫外-可见吸收光谱研究了样品的形貌和吸附性能。紫外可见吸收光谱表明,典型的吸收峰位于234 nm、342 nm和640 nm处。hrtem图像显示,N-GQDs的平均尺寸约为5 nm。与N-GQDs在342 nm处(最强吸收峰)的吸收峰相比,N-GQDs·Fe3+的吸收峰在295 nm处向较低波长偏移,这是由于N-GQDs的羟基、羧基、吡啶氮基与Fe3+离子之间的络合作用所致。这些结果表明,N-GQDs材料在水中Fe3+的检测中具有潜在的应用前景。
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Synthesis and ability to detect Fe3+ ion of N-doped Graphene Quantum Dots materials
In this study, nitrogen-doped graphene quantum dots (N-GQDs) were successfully synthesized by hydrothermal method. The morphology and adsorption properties of samples were studied through high resolution transmission electron microscopy (HR-TEM) and UV-Vis absorption spectra. The UV-Vis absorption spectra showed that the typical absorption peaks at 234 nm and 342 nm and 640 nm were characteristic of the N-GQDs materials. HR-TEM image showed that the average size of N-GQDs is about 5 nm. Compared with the absorption peak at 342 nm (strongest absorption peak) of N-GQDs, the absorption peak of N-GQDs·Fe3+ shift towards lower wavelengths at 295 nm, which is due to the complexation between hydroxyl, carboxyl, pyridinic nitrogengroups of the N-GQDs and Fe3+ ions. These results indicated that the N-GQDs materials could have potential application for detecte Fe3+ in the water.
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