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Photoelectrochemical properties of titania nanotubes

机译:二氧化钛纳米管的光电化学性质

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摘要

N-type nanocrystalline titania is a promising material for use in semiconductor photoelectrochemical cells and, potentially, the solar generation of hydrogen. In this study, we examined the photochemical properties of titania nanotube arrays made by anodization of a starting Ti foil in a fluoride ion containing electrolyte. The absorption properties of the titania nanotube samples were investigated using diffuse reflectance ultraviolet (UV)-visible (vis) spectroscopy, with a broadening of the absorption spectra seen as a function of material phase, nanotube diameter, and Pd sensitization. The magnitude of the anodic photocurrent obtained from the polycrystalline nanotube samples, measured under band gap UV illumination, appeared to be significantly higher than that reported for any other form of nanocrystalline titania. A maximum photoconversion efficiency (UV light exposure at 365 nm, intensity 146 mW/cm(2)) of 4.8% was obtained for 22 nm diameter nanotubes annealed at 500 degreesC and coated with a discontinuous palladium layer of 10 nm average effective thickness.
机译:N型纳米晶二氧化钛是一种有前途的材料,可用于半导体光电化学电池,并有可能在太阳能中产生氢。在这项研究中,我们研究了在含氟离子的电解质中对起始Ti箔进行阳极氧化制成的二氧化钛纳米管阵列的光化学性质。二氧化钛纳米管样品的吸收特性是使用漫反射紫外(UV)-可见(vis)光谱学进行研究的,吸收谱的增宽被视为材料相,纳米管直径和Pd敏化的函数。在带隙UV照射下测得的从多晶纳米管样品获得的阳极光电流大小似乎明显高于任何其他形式的纳米晶二氧化钛。对于在500℃退火并涂有平均有效厚度为10 nm的不连续钯层的22 nm直径纳米管,可获得4.8%的最大光转换效率(在365 nm的紫外线下照射,强度146 mW / cm(2))。

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