基于D-π-A发色团的聚合物光波导可回收倏逝场硝基芳烃传感器。

IF 3.8 2区 化学 Q1 BIOCHEMICAL RESEARCH METHODS
Analytical and Bioanalytical Chemistry Pub Date : 2025-04-01 Epub Date: 2025-02-12 DOI:10.1007/s00216-025-05769-4
Jinkai Wang, Xiangzhuo Han, Yingzhe Wang, Zhanchen Cui, Zuosen Shi
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引用次数: 0

摘要

硝基芳烃因其高爆炸性和潜在的水污染而备受关注。光波导传感技术具有价格合理、灵敏度高、可重复使用、检测结果有效等优点,已被应用于硝基芳烃的检测中。然而,目前大多数光波导传感器的工作原理是累积折射率变化,这就需要延长检测时间。此外,尽管许多光波导传感器是可重复使用的,但它们通常需要复杂且耗时的后处理步骤来进行器件恢复,并且在多次使用后其检测性能显着下降,从而限制了它们的实际应用。本文利用高分子光波导材料和D-π-A发色团分子,研制了一种用于水中硝基芳烃检测的倏逝场光波导传感器。我们将传感分子集成到疏水性氟硅树脂包层材料中,并利用倏逝场原理监测表面传感分子与硝基芳烃相互作用后光学性质的变化。这种方法不仅可以防止污染物渗透到传感器中,允许快速设备恢复,而且还有助于快速定量检测。该传感器的检测时间约为5秒,恢复时间约为3秒,检测极限为0.11 ppm,在几个检测周期后性能基本保持不变。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Polymer optical waveguide recoverable evanescent field nitroaromatics sensor based on D-π-A chromophore.

Nitroaromatics are a significant concern due to their high explosiveness and potential for water pollution. Optical waveguide sensing technology has been employed in the detection of nitroaromatics, leveraging its advantages of affordability, high sensitivity, reusability, and effective detection results. However, most current optical waveguide sensors operate on the principle of cumulative refractive index change, which necessitates extended detection times. Additionally, although many optical waveguide sensors are reusable, they often require complex and time-consuming post-processing steps for device recovery, and their detection performance significantly degrades after multiple uses, thus limiting their practical applications. In this work, we developed an evanescent field optical waveguide sensor for the detection of nitroaromatics in water, utilizing polymeric optical waveguide materials and D-π-A chromophore molecule. We integrated the sensing molecules into the hydrophobic fluorosilicone resin upper cladding material and employed the evanescent field principle to monitor changes in the optical properties of the surface sensing molecules following their interaction with nitroaromatics. This approach not only prevented contaminant penetration into the sensor, allowing for rapid device recovery, but also facilitated quick quantitative detection. Our sensor demonstrates a detection time of approximately 5 s, a recovery time of about 3 s, and achieves a detection limit of 0.11 ppm, with performance remaining largely intact after several detection cycles.

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来源期刊
CiteScore
8.00
自引率
4.70%
发文量
638
审稿时长
2.1 months
期刊介绍: Analytical and Bioanalytical Chemistry’s mission is the rapid publication of excellent and high-impact research articles on fundamental and applied topics of analytical and bioanalytical measurement science. Its scope is broad, and ranges from novel measurement platforms and their characterization to multidisciplinary approaches that effectively address important scientific problems. The Editors encourage submissions presenting innovative analytical research in concept, instrumentation, methods, and/or applications, including: mass spectrometry, spectroscopy, and electroanalysis; advanced separations; analytical strategies in “-omics” and imaging, bioanalysis, and sampling; miniaturized devices, medical diagnostics, sensors; analytical characterization of nano- and biomaterials; chemometrics and advanced data analysis.
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