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Enhanced charge-collection efficiencies and light scattering in dye-sensitized solar cells using oriented TiO2 nanotubes arrays

机译:使用取向的TiO2纳米管阵列提高染料敏化太阳能电池的电荷收集效率和光散射

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We report on the microstructure and dynamics of electron transport and recombination in dye-sensitized solar cells (DSSCs) incorporating oriented TiO2 nanotube (NT) arrays. The morphology of the NT arrays, which were prepared from electrochemically anodized Ti foils, were characterized by scanning and transmission electron microscopies. The arrays were found to consist of closely packed NTs, several micrometers in length, with typical wall thicknesses and intertube spacings of 8-10 nm and pore diameters of about 30 nm. The calcined material was fully crystalline with individual NTs consisting of about 30 nm sized crystallites. The transport and recombination properties of the NT and nanoparticle (NP) films used in DSSCs were studied by frequency-resolved modulated photocurrent/photovoltage spectroscopies. While both morphologies display comparable transport times, recombination was much slower in the NT films, indicating that the NT-based DSSCs have significantly higher charge-collection efficiencies than their NP-based counterparts. Dye molecules were shown to cover both the interior and exterior walls of the NTs. Analysis of photocurrent measurements indicates that the light-harvesting efficiencies of NT-based DSSCs were higher than those found for DSSCs incorporating NPs owing to stronger internal light-scattering effects.
机译:我们报告了结合取向的TiO2纳米管(NT)阵列的染料敏化太阳能电池(DSSCs)中的电子传输和重组的微观结构和动力学。由电化学阳极氧化的Ti箔制成的NT阵列的形貌通过扫描和透射电子显微镜检查表征。发现该阵列由紧密堆积的NTs组成,其长度为几微米,典型的壁厚和管间间距为8-10nm,孔径为约30nm。煅烧的材料是完全结晶的,具有约30nm尺寸的微晶组成的单个NT。通过频率分辨调制光电流/光电压光谱研究了用于DSSC的NT和纳米颗粒(NP)薄膜的传输和复合特性。虽然两种形态都显示出可比的传输时间,但NT膜中的重组要慢得多,这表明基于NT的DSSC比基于NP的对应物具有更高的电荷收集效率。显示染料分子覆盖了NT的内壁和外壁。对光电流测量结果的分析表明,由于内部光散射效应更强,基于NT的DSSC的光收集效率要高于包含NP的DSSC的光收集效率。

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