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Europium doping effect on 3D flower-like SnO2 nanostructures: morphological changes, photocatalytic performance and fluorescence detection of heavy metal ion contamination in drinking water

机译:do掺杂对3D花状SnO2纳米结构的影响:饮用水中重金属离子污染的形态变化,光催化性能和荧光检测

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Pure and Eu-doped (1, 3, 5, 7and10 mol%) SnO _(2) nanostructures have been successfully synthesized by a facile and simple hydrothermal method. The properties of as-synthesized samples have been investigated by various analytical techniques. It was found that the morphology of as-synthesized flower-like SnO _(2) nanostructures made of intermingled small-size agglomerated nanorods can be precisely controlled by varying the Eu dopant concentration in a reasonable range. Moreover, the photocatalytic activity of SnO _(2) studied by the degradation of rhodamine-B (RhB) dye in aqueous media shows excellent performance on 10 mol% europium doping, which may be attributed to its specific morphology and larger surface area as seen from BET measurements. Furthermore, sensors based on 10 mol% Eu-doped SnO _(2) nanostructures show the highest fluorescence quenching efficiency (0.23) as compared to pure SnO _(2) and other doped samples for the lowest concentration of Cd ~(2+) (10 ppb) in drinking water with a Limit of Detection (LOD) as low as 7 ppb; 0.007 μg mL ~(?1) . The formation mechanism of Eu-doped SnO _(2) nanostructures has been discussed in detail.
机译:通过简便的水热法成功地合成了纯的和Eu掺杂的(1、3、5、7和10 mol%)SnO _(2)纳米结构。已通过各种分析技术研究了合成样品的性质。研究发现,通过在合理范围内改变Eu掺杂剂浓度,可以精确地控制由混杂的小尺寸团聚纳米棒组成的合成花状SnO _(2)纳米结构的形貌。此外,通过若丹明-B(RhB)染料在水性介质中的降解研究的SnO _(2)的光催化活性显示出对10 mol%shows掺杂的优异性能,这可能归因于其特定的形貌和较大的表面积根据BET测量。此外,与纯SnO _(2)和其他掺杂样品相比,Cd〜(2+)的最低浓度,基于10 mol%Eu掺杂的SnO _(2)纳米结构的传感器显示出最高的荧光猝灭效率(0.23)。 (10 ppb)在饮用水中的检出限(LOD)低至7 ppb; 0.007μgmL〜(?1)。详细讨论了Eu掺杂SnO _(2)纳米结构的形成机理。

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