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Controlling Morphological Parameters of Anodized Titania Nanotubes for Optimized Solar Energy Applications

机译:控制阳极氧化钛纳米管的形态参数以优化太阳能应用

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摘要

Anodized TiO2 nanotubes have received much attention for their use in solar energy applications including water oxidation cells and hybrid solar cells [dye-sensitized solar cells (DSSCs) and bulk heterojuntion solar cells (BHJs)]. High surface area allows for increased dye-adsorption and photon absorption. Titania nanotubes grown by anodization of titanium in fluoride-containing electrolytes are aligned perpendicular to the substrate surface, reducing the electron diffusion path to the external circuit in solar cells. The nanotube morphology can be optimized for the various applications by adjusting the anodization parameters but the optimum crystallinity of the nanotube arrays remains to be realized. In addition to morphology and crystallinity, the method of device fabrication significantly affects photon and electron dynamics and its energy conversion efficiency. This paper provides the state-of-the-art knowledge to achieve experimental tailoring of morphological parameters including nanotube diameter, length, wall thickness, array surface smoothness, and annealing of nanotube arrays.
机译:阳极氧化TiO2纳米管因其在太阳能应用中的使用而受到广泛关注,包括水氧化电池和混合太阳能电池[染料敏化太阳能电池(DSSC)和体异质结太阳能电池(BHJ)]。高表面积允许增加染料吸附和光子吸收。通过在含氟化物的电解质中对钛进行阳极氧化而生长的二氧化钛纳米管垂直于基板表面排列,从而减少了电子扩散至太阳能电池外部电路的路径。可以通过调整阳极氧化参数针对各种应用优化纳米管的形态,但是仍然需要实现纳米管阵列的最佳结晶度。除形态和结晶度外,器件制造方法还会显着影响光子和电子动力学及其能量转换效率。本文提供了最新的知识,可实现形态参数的实验性定制,包括纳米管直径,长度,壁厚,阵列表面光滑度和纳米管阵列的退火处理。

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