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首页> 外文期刊>Applied Surface Science >Colloidal GdVO4:Eu3+@SiO2 nanocrystals for highly selective and sensitive detection of Cu2+ ions
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Colloidal GdVO4:Eu3+@SiO2 nanocrystals for highly selective and sensitive detection of Cu2+ ions

机译:胶态GdVO4:Eu3 + @ SiO2纳米晶体,用于高选择性和灵敏地检测Cu2 +离子

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Nowadays, in view of health and safety demands, the controlled design of selective and sensitive sensors for Cu2+ detection is of considerable importance. Therefore, we construct herein core-shell colloidal GdVO4:Eu3+@SiO2 nanocrystals (NCs) as optical sensor for the detection of Cu2+, which were synthesized by a facile hydrothermal reaction and encapsulated with a uniform layer of ultrathin silica through a solgel strategy. The NCs present strong red emission due to energy transfer from VO43- groups to Eu3+ when exciting with ultraviolet (UV) light. This intense red emission from Eu3+ could be selectively quenched in the presence of Cu2+ in comparison to other metal ions and the limit of detection is as low as 80 nM in aqueous solution. It is revealed that the spectral overlap between the emission band of NCs and the absorption of Cu2+ accounts for this intriguing luminescence behavior. The detection ability is highly reversible by the addition of ethylenediaminetetraacetic acid (EDTA) with the recovery of almost 100% of the original luminescence. The luminescence quenching and recovery processes can be performed repeatedly with good sensing ability. These remarkable performances allow the colloidal GdVO4:Eu3+@SiO2 NCs a promising fluorescence chemosensor for detecting Cu2+ ions in aqueous solution. (C) 2017 Elsevier B.V. All rights reserved.
机译:如今,考虑到健康和安全要求,用于检测Cu2 +的选择性和敏感传感器的受控设计非常重要。因此,我们在此构建了核壳胶体GdVO4:Eu3 + @ SiO2纳米晶体(NCs)作为用于检测Cu2 +的光学传感器,这些晶体是通过便捷的水热反应合成的,并通过溶胶凝胶策略用均匀的超薄二氧化硅层封装。由于在紫外线(UV)激发下从VO43-基团到Eu3 +的能量转移,NC呈现出强烈的红色发射。与其他金属离子相比,在Cu2 +存在下,Eu3 +发出的强烈红色发射可以被选择性淬灭,水溶液中的检出限低至80 nM。揭示了NCs的发射带和Cu2 +的吸收之间的光谱重叠解释了这种有趣的发光行为。通过添加乙二胺四乙酸(EDTA),检测能力具有高度可逆性,回收率几乎是原始发光的100%。可以以良好的感测能力重复进行发光猝灭和恢复过程。这些出色的性能使胶体GdVO4:Eu3 + @ SiO2 NCs成为检测水溶液中Cu2 +离子的有前途的荧光化学传感器。 (C)2017 Elsevier B.V.保留所有权利。

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