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High Carrier Density and Capacitance in TiO_2 Nanotube Arrays Induced by Electrochemical Doping

机译:电化学掺杂在TiO_2纳米管阵列中的高载流子密度和电容

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The paper describes the electronic charging and conducting properties of vertically oriented TiO_2 nanotube arrays formed by anodization of Ti foil samples. The resulting films, composed of vertically oriented nanotubes approximately 10 μm long, wall thickness 22 nm, and pore diameter 56 nm, are analyzed using impedance spectroscopy and cyclic voltammetry. Depending on the electrochemical conditions two rather different electronic behaviors are observed. Nanotube array samples in basic medium show behavior analogous to that of nanoparticulate TiO_2 films used in dye-sensitized solar cells: a chemical capacitance and electronic conductivity that increase exponentially with bias potential indicating a displacement of the Fermi level. Nanotube array samples in acidic medium, or samples in a basic medium submitted to a strong negative bias, exhibit a large increase in capacitance and conductivity indicating Fermi level pinning. The contrasting behaviors are ascribed to proton intercalation of the TiO_2. Our results suggest a route for controlling the electronic properties of the ordered metal-oxide nanostructures for their use in applications including supercapacitors, dye-sensitized solar cells, and gas sensing.
机译:本文描述了通过钛箔样品的阳极氧化形成的垂直取向的TiO_2纳米管阵列的电子充电和导电性能。使用阻抗光谱法和循环伏安法分析所得膜,该膜由约10μm长,壁厚22 nm和孔径56 nm的垂直取向纳米管组成。取决于电化学条件,观察到两个相当不同的电子行为。基本介质中的纳米管阵列样品显示出与染料敏化太阳能电池中使用的纳米颗粒TiO_2薄膜相似的行为:化学电容和电子电导率随偏置电位呈指数增加,表明费米能级发生了位移。在酸性介质中的纳米管阵列样品,或在碱性介质中经受强负偏压的样品,其电容和电导率都有很大的提高,表明费米能级固定。对比行为归因于TiO_2的质子嵌入。我们的结果提出了一种控制有序金属氧化物纳米结构的电子性能的途径,以用于包括超级电容器,染料敏化太阳能电池和气体传感在内的应用。

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