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Polymer-coated Boron Doped Diamond Optically Transparent Electrodes for Spectroelectrochemical Sensors

机译:用于光谱电化学传感器的聚合物涂覆的硼掺杂金刚石光学透明电极

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摘要

Spectroelectrochemical sensors combine electrochemistry, spectroscopy, and partitioning into a film to provide improved selectivity for the target analyte. The sensor usually consists of an optically transparent electrode (OTE) coated with a charge selective polymer film. The polymer film is chosen to pre-concentrate analyte at the OTE surface to improve the sensitivity and provide selectivity against like charged interferences. OTEs such as Indium Tin Oxide (ITO) have been used extensively for spectroelectrochemical sensors, but little is known about the applicability of such sensors using other OTE materials, such as Boron Doped Diamond (BDD). One distinct advantage of BDD OTEs over ITO OTEs is their significant increase in sensitivity for organic compounds, such as 4-aminophenol and hydroquinone. We have developed absorption and fluorescence-based sensing methods with a BDD OTE coated with a sulfonated ionomer film, Nafion. This is demonstrated with tris(2,2'-bipyridyl) ruthenium(II) ion [Ru(bpy)(3)(2+)] using an attenuated total reflectance (ATR) flow cell setup for both absorption and fluorescence. With a Nafion coated BDD optically transparent thin layer electrode (OTTLE), we developed a fluorescence based sensor for a common polyaromatic hydrocarbon (PAH), 1-hydroxypyrene (1-pyOH), achieving a detection limit of 80 nM (17 ppb). This work manifests new sensing applications while broadening the use of spectroelectrochemistry, OTEs, and BDD as an electrode material.
机译:光谱电化学传感器结合了电化学,光谱学和分割成膜的特性,从而提高了对目标分析物的选择性。传感器通常由涂有电荷选择性聚合物膜的光学透明电极(OTE)组成。选择聚合物膜以在OTE表面预浓缩分析物,以提高灵敏度并提供针对类似带电干扰的选择性。诸如氧化铟锡(ITO)之类的OTE已广泛用于光谱电化学传感器,但对于使用其他OTE材料(如掺硼金刚石(BDD))的此类传感器的适用性知之甚少。 BDD OTE优于ITO OTE的一个明显优势是它们对有机化合物(例如4-氨基苯酚和对苯二酚)的敏感性显着提高。我们已经开发了一种基于吸收和基于荧光的传感方法,其中的BDD OTE涂有磺化离聚物薄膜Nafion。使用三(2,2'-联吡啶基)钌(II)离子[Ru(bpy)(3)(2+)]进行了证明,使用衰减的全反射率(ATR)流通池设置进行吸收和荧光检测。借助Nafion涂层的BDD光学透明薄层电极(OTTLE),我们开发了一种基于荧光的传感器,用于常见的聚芳烃(PAH),1-羟基py(1-pyOH),检测限达到80 nM(17 ppb)。这项工作体现了新的传感应用,同时扩大了光谱电化学,OTE和BDD作为电极材料的使用。

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