首页> 外文期刊>Journal of nanoparticle research: An interdisciplinary forum for nanoscale science and technology >ZnSe core and ZnSe@ZnS core-shell quantum dots as platform for folic acid sensing
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ZnSe core and ZnSe@ZnS core-shell quantum dots as platform for folic acid sensing

机译:Znse核心和ZnSE @ ZnS核心 - 壳量子点作为叶酸感应的平台

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This report demonstrates a quantum dot (QD)-based selective and fast sensor platform for detection of folic acid (FA). This electrochemical platform provides a good linear relation between the anodic and cathodic peak currents (i(pa) and i(pc)) in the FA concentration range of 12 to 96 nM, and the minimum detection limit (MDL) achieved was 10 nM. As an extension, absorbance and fluorescence methods were also used for the detection of FA in solutions. Core-shell QDs provided better binding than core-only ZnSe quantum dots, and showed twofold increment in binding constant. A detailed comparative evaluation of the three methods (absorbance, fluorescence, and electrochemical) is presented vis-a-vis real samples. Therefore, in principle absorbance and fluorescence spectroscopy can also be used for detecting folic acid with high selectivity and sensitivity. TheMDL can be extended to be 4-7 nM level by using fluorescence and absorbance spectroscopy. FA metabolism occurs in the intestine, where the pH conditions are basic. Hence, sensing of FA under physiological conditions is relevant, which was achieved in our case. Earlier methods have reported sensing under acidic or neutral pH conditions. Considering the importance of folic acid in physiology, the significance of the present study can be hardly stressed.
机译:本报告显示了基于量子点(QD)的选择性和快速传感器平台,用于检测叶酸(FA)。该电化学平台在12至96nm的FA浓度范围内提供阳极和阴极峰值电流(I(PA)和I(PC)之间的良好线性关系,并且所达到的最小检测限(MDL)为10nm。作为延伸,吸光度和荧光方法也用于检测溶液中的FA。核心壳QD提供比仅核心ZnSE量子点更好的绑定,并显示粘合恒定的双重增量。对三种方法(吸光度,荧光和电化学)进行了详细的比较评价,得到了Vis-A-Vis真实样品。因此,原则上吸光度和荧光光谱也可用于检测具有高选择性和敏感性的叶酸。通过使用荧光和吸光光度光谱,HTOMDL可以扩展为4-7nm水平。发生pH条件是基本的肠道发生的发酵代谢。因此,在生理条件下对FA的感测是相关的,这是我们的案例所取得的。之前的方法报告了在酸性或中性pH条件下感测。考虑到叶酸在生理学中的重要性,可能难以强调本研究的重要性。

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