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一种用于检测四环素的棒状智能多色纳米传感器:纳米粘土和碳点的集成。

A stick-like intelligent multicolor nano-sensor for the detection of tetracycline: The integration of nano-clay and carbon dots.

机构信息

College of Chemistry and Chemical Engineering, Henan Polytechnic University, No. 2001 Shiji Road, Jiaozuo, Henan 454000, China.

College of Chemistry and Chemical Engineering, Henan Polytechnic University, No. 2001 Shiji Road, Jiaozuo, Henan 454000, China.

出版信息

J Hazard Mater. 2021 Jul 5;413:125296. doi: 10.1016/j.jhazmat.2021.125296. Epub 2021 Feb 3.

Abstract

In recent years, the overuse of antibiotics has caused more and more serious environmental pollution, the uncontrolled abuse of antibiotics makes bacteria produce resistance to antibiotics faster than the replacement rate of antibiotics themselves, leading to the emergence of super drug-resistant bacteria. Therefore, it is of great practical significance to establish a simple, rapid and sensitive method for the detection of antibiotics. By integrating natural nano-clay (Atta) and carbon dots (CDs), the real-time and rapid visual detection of tetracycline (TC) in the sample can be realized by chromaticity pick-up APP on smartphone. The nano-sensor can detect tetracycline in the concentration between 25 nM and 20 μM with the detection limit of 8.7 nM. The low detection limit coupled with good accuracy, sensitivity and specificity meets the requirements for the detection of tetracycline in food. More importantly, the test paper and fluorescent stick-like nano-sensor are designed to detect tetracycline by polychromatic fluorescence changes. In addition, a logic gate for semi-quantitative identification of the concentration of tetracycline is designed, which makes it possible for the application of the nano-sensor in the field of smart devices.

摘要

近年来,抗生素的过度使用造成了越来越严重的环境污染,抗生素的滥用使得细菌产生抗药性的速度快于抗生素本身的替换率,导致超级耐药菌的出现。因此,建立一种简单、快速、灵敏的抗生素检测方法具有重要的实际意义。通过整合天然纳米粘土(Atta)和碳点(CDs),可以通过智能手机上的色度计 APP 实现对样品中四环素(TC)的实时快速可视化检测。纳米传感器可以在 25 nM 至 20 μM 的浓度范围内检测四环素,检测限为 8.7 nM。低检测限加上良好的准确性、灵敏度和特异性满足了食品中四环素检测的要求。更重要的是,设计了试纸和荧光棒状纳米传感器,通过多色荧光变化来检测四环素。此外,还设计了一个用于半定量识别四环素浓度的逻辑门,这使得纳米传感器有可能应用于智能设备领域。

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