Khan Reem, Uygun Zihni Onur, Andreescu Daniel, Andreescu Silvana
Department of Chemistry and Biomolecular Science, Clarkson University, Potsdam, New York 13699, United States.
Department of Medical Biochemistry, Faculty of Medicine, Kafkas University, Kars 36100, Turkey.
ACS Sens. 2024 Jun 28;9(6):3403-3412. doi: 10.1021/acssensors.4c00776. Epub 2024 Jun 3.
Per- and polyfluoroalkyl substances (PFAS) pose a significant threat to the environment due to their persistence, ability to bioaccumulate, and harmful effects. Methods to quantify PFAS rapidly and effectively are essential to analyze and track contamination, but measuring PFAS down to the ultralow regulatory levels is extremely challenging. Here, we describe the development of a low-cost sensor that can measure a representative PFAS, perfluorooctanesulfonic acid (PFOS), at the parts per quadrillion (ppq) level within 5 min. The method combines the ability of PFOS to bind to silver nanoparticles (AgNPs) embedded within a fluorine-rich TiC-based multilayered MXene, which provides a large surface area and accessible binding sites for direct impedimetric detection. Fundamentally, we show that MXene-AgNPs are capable of binding PFOS and other long-chain PFAS compounds, though the synergistic action of AgNPs and MXenes via electrostatic and F-F interactions. This binding induced concentration-dependent changes in the charge-transfer resistance, enabling rapid and direct quantification with extremely high sensitivity and no response to interferences. The sensor displayed a linear range from 50 ppq to 1.6 ppt (parts per trillion) with an impressively low limit of detection of 33 ppq and a limit of quantification of 99 ppq, making this sensor a promising candidate for low-cost screening of the PFAS content in water samples, using a simple and inexpensive procedure.
全氟和多氟烷基物质(PFAS)因其持久性、生物累积能力和有害影响而对环境构成重大威胁。快速有效地量化PFAS的方法对于分析和追踪污染至关重要,但将PFAS测量至超低监管水平极具挑战性。在此,我们描述了一种低成本传感器的开发,该传感器能够在5分钟内以万亿分之一(ppq)水平测量代表性PFAS全氟辛烷磺酸(PFOS)。该方法结合了PFOS与嵌入富含氟的TiC基多层MXene中的银纳米颗粒(AgNPs)结合的能力,MXene提供了大表面积和可及的结合位点用于直接阻抗检测。从根本上讲,我们表明MXene-AgNPs能够通过静电和F-F相互作用,协同结合PFOS和其他长链PFAS化合物。这种结合引起电荷转移电阻的浓度依赖性变化,实现了具有极高灵敏度且对干扰无响应的快速直接定量。该传感器的线性范围为50 ppq至1.6 ppt(万亿分之一),检测限低至33 ppq,定量限为99 ppq,通过简单且廉价的程序,使其成为水样中PFAS含量低成本筛查的有前景候选者。