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首页> 外文期刊>Biosensors & Bioelectronics: The International Journal for the Professional Involved with Research, Technology and Applications of Biosensers and Related Devices >Imaging-based fluorescent sensing platform for quantitative monitoring and visualizing of fluoride ions with dual-emission quantum dots hybrid
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Imaging-based fluorescent sensing platform for quantitative monitoring and visualizing of fluoride ions with dual-emission quantum dots hybrid

机译:基于成像的荧光传感平台,用于用双发射量子点杂种定量监测和可视化氟离子

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Herein, a ratiometric fluorescence sensing strategy coupled with smartphone imaging-based sensing platform was proposed for the on-site determination of fluoride ion (F-) with high sensitivity and accuracy. The principle of sensing strategy is based on the fluoride-promoted Si-O bond cleavage of 2-(tert-butyldiphenylsilyloxy)phenol (2-TBDPSP) to release 2-hydroxyphenolate, which rapidly auto-oxidized to ortho-quinone. As excellent electron acceptor, these quinone species covalently bonded on the surface of dual-emission amino-modified quantum dots (QDs) nanohybrid via a Michael's type adduction, quenching the fluorescence of green-emitting QDs on the surface of the nanohybrid, while not affecting the fluorescence of red-emitting QDs embedding silica nano spheres. Upon exposure to different amounts of F-, the variations of dual emission intensity ratios display continuous color changes from green to red, which could be directly observed by naked eyes. Then a smartphone imaging-based sensing platform was constructed by 3D-printing technology. The smartphone camera acquired the images of fluorescence derived from samples, and the Color Picker APP installed in smartphone continued to read out the Red, Green and Blue (RGB) channel values of these images. There was a linear relationship between the ratio of Red and Green (R/G) and F- concentration in the range of 0-70.0 mu M. The limit of detection (LOD) was estimated to be 2.0 mu M, much lower than the allowable level of F- (similar to 63.16 mu M) in drinking water set by World Health Organization. This methodology reported here is low-cost, portable, easy-operation, and thus potentially attractive for F- determination without the need of elaborate equipment.
机译:这里,提出了一种与智能手机成像的传感平台耦合的比率荧光感测策略,用于在荧光离子(F-)的内部测定具有高灵敏度和精度。传感策略的原理基于氟化氟化的Si-O键粘合的2-(叔丁基二苯基甲硅烷基氧基)苯酚(2-TBDPSP)释放2-羟基酚酸盐,其快速自动氧化于邻醌。作为优异的电子受体,这些醌物种通过Michael的类型的内容在双发射氨基修饰的量子点(QDS)纳米冬次的表面上共价键合,猝灭在纳米冬小的表面上的绿色发射QD的荧光,同时不会影响红发QDS嵌入二氧化硅纳米球体的荧光。暴露于不同量的F-时,双发射强度比的变化显示从绿色到红色的连续颜色变化,这可以通过肉眼直接观察。然后由3D打印技术构建了基于智能手机成像的传感平台。智能手机摄像机获取荧光源自样本的图像,并且安装在智能手机中的颜色选择器应用程序继续读出这些图像的红色,绿色和蓝色(RGB)信道值。在0-70.0 mu m的范围内的红色和绿色(r / g)和f-浓度之间存在线性关系。估计检测限估计为2.0亩,远低于世界卫生组织饮用水中允许的F-(类似于63.16亩)的允许水平。此处报告的该方法是低成本,便携式,易操作,因此对于F模式可能具有吸引力,而无需精细设备。

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