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Metal-Organic Framework-Based Microfluidic Impedance Sensor Platform for Ultrasensitive Detection of Perfluorooctanesulfonate

机译:基于金属 - 有机框架的微流体阻抗传感器平台,用于全氟辛磺酸盐的超细检测

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The growing global concerns to public health from human exposure to perfluorooctanesulfonate (PFOS) require rapid, sensitive, in situ detection where current, state-of-the-art techniques are yet to adequately meet sensitivity standards of the real world. This work presents, for the first time, a synergistic approach for the targeted affinity-based capture of PFOS using a porous sorbent probe that enhances detection sensitivity by embedding it on a microfluidic platform. This novel sorbent-containing platform functions as an electrochemical sensor to directly measure PFOS concentration through a proportional change in electrical current (increase in impedance). The extremely high surface area and pore volume of mesoporous metal-organic framework (MOF) Cr-MIL-101 is used as the probe for targeted PFOS capture based on the affinity of the chromium center toward both the fluorine tail groups as well as the sulfonate functionalities as demonstrated by spectroscopic (NMR and XPS) and microscopic (TEM) studies. Answering the need for an ultrasensitive PFOS detection technique, we are embedding the MOF capture probes inside a microfluidic channel, sandwiched between interdigitated microelectrodes (ID mu E). The nanoporous geometry, along with interdigitated microelectrodes, increases the signal-to-noise ratio tremendously. Further, the ability of the capture probes to interact with the PFOS at the molecular level and effectively transduce that response electrochemically has allowed us achieve a significant increase in sensitivity. The PFOS detection limit of 0.5 ng/L is unprecedented for in situ analytical PFOS sensors and comparable to quantification limits achieved using state-of-the-art ex situ techniques.
机译:从人体暴露于全氟辛磺酸盐(PFOS)的公共卫生的全球担忧都需要快速,敏感,原位检测,其中最先进的技术尚未充分满足现实世界的敏感标准。这项工作首次出现了使用多孔吸附剂探针的靶向亲和基于PFOS捕获的协同方法,该探针通过将检测灵敏度嵌入微流体平台上来增强检测灵敏度。含新的吸附剂的平台用作电化学传感器,以通过电流的比例变化直接测量PFOS浓度(阻抗的增加)。介孔金属 - 有机框架(MOF)CR-MIL-101的极高表面积和孔体积用作靶向PFOS捕获的探针,基于铬中心朝向氟尾部以及磺酸盐的亲和力光谱(NMR和XPS)和微观(TEM)研究证明的功能。回答需要超敏PFOS检测技术的需要,我们将MOF捕获探针嵌入微流体通道内,夹在交叉的微电极(ID MU E)之间。纳米多孔几何形状以及交叉的微电极,巨大地增加了信噪比。此外,捕获探针在分子水平下与PFO相互作用的能力,并有效地迁移电化学的反应使我们能够实现敏感性显着增加。对于原位分析PFOS传感器,PFOS检测限为0.5ng / L.对于原位分析PFOS传感器,并且与使用最先进的EX原位技术实现的量化限制相当。

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