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基于可编程打印纸的 MoS NP 和 Gmp/Eu-Cit 荧光偶联器件,用于各种天然样品中四环素的比率分析。

Programmable-Printing Paper-Based Device with a MoS NP and Gmp/Eu-Cit Fluorescence Couple for Ratiometric Tetracycline Analysis in Various Natural Samples.

机构信息

Department of Food & Biological Engineering, Jiangsu University, Zhenjiang 212013, P.R. China.

出版信息

ACS Sens. 2021 Nov 26;6(11):4038-4047. doi: 10.1021/acssensors.1c01448. Epub 2021 Oct 21.

Abstract

Paper-based fluorescence devices, with smartphone aids, bring considerable operation convenience for tetracycline (TC) sensing. Nevertheless, they must meet the challenge in real determination against complicated backgrounds. Considering that, we present a programmable-printing paper-based device and then apply it to TC determination for various natural samples. MoS NPs and Gmp/Eu-Cit are synthetized as composite probes. A static quenching process is found with MoS NP fluorescence at 430 nm, while significant magnification of Gmp/Eu-Cit emission is obtained at 617 nm, establishing a valuable ratiometric indicator. Remarkably, two-stage programmable printing maximizes the proposed sensing capability. A transitive device, containing a gradually changing amount of a certain probe, is prepared to sense TC. With a homemade smartphone application and 3D-printed measurement chamber, the corresponding signals are examined to explore optimal setups. These setups are automatically processed to prepare the final-version device, not requiring manual operations. Benefitting from this interesting feature, the proposed device gains many rewards in performances. It effectively senses TC in a wide range from 12.7 nM to 80 μM and simultaneously provides naked eye-legible signals and smartphone-based readouts with confident selectivity and stability. This device is consequently applied for various samples of soil, river water, milk, and serum and meets well with HPLC-MS and recovery tests.

摘要

基于纸的荧光设备,配合智能手机,可以为四环素(TC)检测带来极大的操作便利性。然而,它们必须应对在实际测定中复杂背景带来的挑战。有鉴于此,我们提出了一种可编程打印的基于纸的设备,并将其应用于各种天然样品中 TC 的测定。MoS NPs 和 Gmp/Eu-Cit 被合成作为复合探针。在 430nm 处观察到 MoS NP 荧光的静态猝灭过程,而在 617nm 处获得 Gmp/Eu-Cit 发射的显著放大,建立了有价值的比率指示。值得注意的是,两阶段可编程打印最大限度地提高了所提出的传感能力。制备了一个包含逐渐变化的特定探针量的过渡设备来检测 TC。通过自制的智能手机应用程序和 3D 打印测量室,检测相应的信号以探索最佳设置。这些设置会自动处理以制备最终版本的设备,无需手动操作。得益于这一有趣的特性,该设备在性能方面获得了许多优势。它能够在从 12.7nM 到 80μM 的宽范围内有效地检测 TC,同时提供肉眼可读的信号和基于智能手机的读数,具有可靠的选择性和稳定性。该设备随后应用于土壤、河水、牛奶和血清等各种样品中,与 HPLC-MS 和回收测试吻合良好。

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