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Surface Functionalization of Fluorine-Doped Tin Oxide Samples through Electrochemical Grafting

机译:通过电化学接枝掺杂氟的氧化锡样品的表面功能化

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Transparent conductive oxides are emerging materials in several fields, such as photovoltaics, photoelectrochemistry, and optical biosensing. Their high chemical inertia, which ensured long-term stability on one side, makes challenging the surface modification of transparent conductive oxides; long-term robust modification, high yields, and selective surface modifications are essential prerequisite for any further developments. In this work, we aim at inducing chemical functionality on fluorine-doped tin oxide surfaces (one of the most inexpensive transparent conductive oxide) by means of electrochemical grafting of aryl diazonium cations. The grafted layers are fully characterized by photoemission spectroscopy, cyclic voltammetry, and atomic force microscopy showing linear correlation between surface coverage and degree of modification. The electrochemical barrier effect of modified surfaces was studied at different pH to characterize the chemical nature of the coating. We showed immuno recognition of biotin complex built onto grafted fluorine-doped tin oxides, which opens the perspective of integrating FTO samples with biological-based devices.
机译:透明导电氧化物是光伏,光电化学和光学生物传感等多个领域的新兴材料。它们的高化学惯性确保了一侧的长期稳定性,这对透明导电氧化物的表面改性提出了挑战。长期稳定的改性,高产量和选择性的表面改性是任何进一步开发的必要先决条件。在这项工作中,我们旨在通过芳基重氮阳离子的电化学接枝在氟掺杂的氧化锡表面(最便宜的透明导电氧化物之一)上诱导化学官能度。接枝层通过光发射光谱法,循环伏安法和原子力显微镜充分表征,显示出表面覆盖率和改性程度之间的线性相关性。研究了在不同pH下改性表面的电化学势垒效应,以表征涂层的化学性质。我们显示了对嫁接在掺氟掺杂的氧化锡上的生物素复合物的免疫识别,这为将FTO样品与基于生物的设备整合开辟了前景。

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