Tough, Eu3+-Induced Luminescent Hydrogel as Flexible Chemosensor for Real-Time Quantitative Detection of Zn2+ Ion

IF 4.1 3区 化学 Q2 POLYMER SCIENCE
Liang Chen, Yuanzhi Cui, Jiaping Ruan, Xincheng Zhang, Yifan Zhang, Ping Rao, Wenshan Ren
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引用次数: 0

Abstract

Herein, a novel tough luminescent hydrogel with Europium is fabricated using a facile copolymerization process by introducing 2,2’:6’,2-terpyridine (TPy) into a dual physical cross-linked hydrogel. The obtained P(NAGA-co-MAAc)/Eu/TPy (x) (x refers to the feed ratio of NAGA to MAAc) hydrogels not only show outstanding mechanical performances (fracture strength, ≈2.5 MPa), but also give a special ability of rapid detection to low concentrations of zinc ions. Attractively, the theoretical limits of detection (LOD) of the hydrogel sensors are calculated as 1.6 µm, which is acceptable within the WHO limit. Furthermore, the continuous change in fluorescence of P(NAGA-co-MAAc)/Eu/TPy (10) strips upon contact with Zn2+ can be clearly observed by the naked eyes with the aid of a portable UV lamp, resulting in semi-quantitative naked-eyes detection through a standard colorimetric card. Moreover, by identifying the RGB value of the hydrogel sensor, it can also realize quantitative analysis. Therefore, excellence in sensing, simplicity in structure, and convenience in using make P(NAGA-co-MAAc)/Eu/TPy (10) hydrogel as a superior fluorescent chemosensor of Zn2+ ions.

强韧的Eu3+诱导发光水凝胶作为实时定量检测Zn2+离子的柔性化学传感器
本文通过在双物理交联水凝胶中引入2,2 ':6 ',2-三吡啶(TPy),采用易共聚工艺制备了一种新型的具有铕的坚韧发光水凝胶。制备的P(NAGA-co-MAAc)/Eu/TPy (x) (x为NAGA与MAAc的进料比)水凝胶不仅具有优异的力学性能(断裂强度≈2.5 MPa),而且对低浓度锌离子具有特殊的快速检测能力。引人注目的是,水凝胶传感器的理论检出限(LOD)计算为1.6µm,在WHO限值内是可以接受的。此外,P(NAGA-co-MAAc)/Eu/TPy(10)条与Zn2+接触后荧光的连续变化可以借助便携式紫外灯肉眼清晰观察,通过标准比色卡进行半定量裸眼检测。此外,通过识别水凝胶传感器的RGB值,还可以实现定量分析。因此,P(NAGA-co-MAAc)/Eu/TPy(10)水凝胶具有传感性能好、结构简单、使用方便等优点,可作为Zn2+离子的优良荧光化学传感器。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Macromolecular Rapid Communications
Macromolecular Rapid Communications 工程技术-高分子科学
CiteScore
7.70
自引率
6.50%
发文量
477
审稿时长
1.4 months
期刊介绍: Macromolecular Rapid Communications publishes original research in polymer science, ranging from chemistry and physics of polymers to polymers in materials science and life sciences.
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