基于智能手机的银离子定量纳米传感中,分析物触发的廷德尔效应的原位“开关”。

IF 3.2 3区 化学 Q3 BIOCHEMISTRY & MOLECULAR BIOLOGY
Miao Hu, Wencheng Xiao, Yijing Chen, Qing He, Kaijing Yuan, Xueer Huang, Wenying Jin, Jinfang Nie, Yun Zhang
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引用次数: 0

摘要

这项工作描述了两种新的比色法,用于基于智能手机的点护理纳米感测有毒Ag+离子。它们是基于分析物触发的非等离子体胶体或等离子体金属纳米探针的廷德尔效应(TE)的原位“开关”。第一个te启发试验(TEA)侧重于沉淀反应的初始分析应用,在沉淀反应中,一旦将分析物与NaCl溶液混合,就可以形成非等离子体AgCl胶体。这种AgCl胶体经激光笔照射后显示出强烈的视觉TE信号,出乎意料地达到了~ 400 nM的检测限。第二个TEA进一步设计,利用分析物对3,3',5,5'-四甲基联苯胺分子的氧化性,将极限降低到~ 78 nM。氧化还原反应可以产生带正电的产物,这些产物可以通过静电相互作用使带负电的等离子体金纳米粒子聚集,从而显着增强其TE响应。这两个限值均低于世界卫生组织发布的饮用水中Ag+的最低允许值(~ 460 nM)。在河流、池塘、自来水和饮用水中检测Ag+离子的回收率令人满意,进一步证明了所提出的方法具有良好的选择性、准确性和实用性,可用于环境分析、公共卫生、水安全等潜在的需求点。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Analyte-triggered in situ "off-on" of Tyndall effect for smartphone-based quantitative nanosensing of Ag+ ions.

This work describes two new colorimetric methods for smartphone-based point-of-care nanosensing of toxic Ag+ ions. They were based on the analyte-triggered in situ "off-on" of Tyndall effect (TE) of non-plasmonic colloid or plasmonic metal nanoprobes. The first TE-inspired assay (TEA) focused on the initial analytical application of precipitation reactions where a non-plasmonic AgCl colloid could be formed once mixing the analyte with a NaCl solution. Such AgCl colloid displayed strong visual TE signals after their irradiation by a laser pointer pen, which unexpectedly achieved a detection limit of ~ 400 nM. The second TEA was further designed to reduce the limit down to ~ 78 nM using the analyte's oxidizability towards 3,3',5,5'-tetramethylbenzidine molecules. The redox reaction could create positively charged products that could make negatively charged plasmonic gold nanoparticles aggregate through electrostatic interactions to remarkably amplify their TE responses. Both limits were lower than the minimum allowable Ag+ level (~ 460 nM) in drinking water issued by the World Health Organization. The satisfactory recovery results for detecting Ag+ ions in river, pond, tap, and drinking water additionally demonstrated good selectivity, accuracy and practicality of the proposed methods for potential point-of-need uses in environmental analysis, public health, water safety, etc.

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来源期刊
Photochemical & Photobiological Sciences
Photochemical & Photobiological Sciences 生物-生化与分子生物学
CiteScore
5.60
自引率
6.50%
发文量
201
审稿时长
2.3 months
期刊介绍: A society-owned journal publishing high quality research on all aspects of photochemistry and photobiology.
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