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Electroactive Interface for Enabling Spectroelectrochemical Investigations in Evanescent-Wave Cavity-Ring-Down Spectroscopy

机译:用于在渐逝波腔 - 翻转光谱中实现光谱电化学研究的电活性界面

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In this study, we report the development of an electrically active solid-liquid interface for the evanescent-wave cavity-ring-down spectroscopic (EW-CRDS) technique to enable spectroelectrochemical investigations of redox events. Because of a high-quality transparent conductive electrode film of indium tin oxide (ITO) coated on the interface of total internal reflection of the EW-CRDS platform, a cavity ring-down time of about 900 ns was obtained allowing spectroelectrochemical studies at solid-liquid interfaces. As a proof-of-concept on the capabilities of the developed platform, measurements were performed to address the effects of an applied electric potential to the adsorption behavior of the redox protein cytochrome c (Cyt-C) onto different interfaces, namely, bare-ITO, 3-aminopropyl triethoxysilane (APTES), and Cyt-C antibody. For each interface, the adsorption and desorption constants, the surface equilibrium constant, the Gibbs free energy of adsorption, and the surface coverage were optically measured by our electrically active EW-CRDS tool. Optical measurements at a set of constant discrete values of the applied electric potential were acquired for kinetic adsorption analysis. Cyclic voltammetry (CV) scans under synchronous optical readout were performed to study the effects of each molecular interface on the redox process of surface-adsorbed protein species. Overall, the experimental results demonstrate the ability of the electro-active EW-CRDS platform to unambiguously measure electrode-driven redox events of surface-confined molecular species at low submonolayer coverages and at a single diffraction-limited spot. Such capability is expected to open several opportunities for the EW-CRDS technique to investigate a variety of electrochemical phenomena at solid-liquid interfaces.
机译:在这项研究中,我们报告了渐逝波腔 - 斜面光谱(EW-CRD)技术的电活性固液界面的开发,以实现氧化还原事件的光谱电化学研究。由于涂覆在EW-CRD平台的总内部反射的界面上的高质量透明导电电极薄膜(ITO),因此获得了约900ns的腔响距时间,允许在固体下进行光谱电化学研究液体界面。作为发达平台的能力的概念证据,进行测量以解决应用的电势对氧化还原蛋白细胞色素C(Cyt-C)的吸附行为的影响,即裸露 - ITO,3-氨基丙基三乙氧基硅烷(Aptes)和Cyt-C抗体。对于每个界面,吸附和解吸常数,表面平衡常数,吸附的GIBBS自由能量,以及通过我们的电活性EW-CRDS工具光学地测量表面覆盖。获得了一组恒定离散值的光学测量,用于动力学吸附分析。进行循环伏安法(CV)在同步光学读数下进行扫描,以研究每个分子界面对表面吸附蛋白质种类的氧化还原过程的影响。总的来说,实验结果表明了电活性EW-CRDS平台在低亚底覆盖器和单次衍射限制点处明确测量表面狭窄的分子物质的电极驱动的氧化还原事件的能力。这些能力有望为EW-CRD技术开辟几种机会,以研究固体液体界面的各种电化学现象。

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