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首页> 外文期刊>Journal of Materials Chemistry, A. Materials for energy and sustainability >Surface modification of TiO2 nanotube arrays with Y2O3 barrier layer: controlling charge recombination dynamics in dye-sensitized solar cellsMLu-Yin LinDDepartment of Chemical Engineering, National Taiwan University, Taipei 10617, Taiwan.
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Surface modification of TiO2 nanotube arrays with Y2O3 barrier layer: controlling charge recombination dynamics in dye-sensitized solar cellsMLu-Yin LinDDepartment of Chemical Engineering, National Taiwan University, Taipei 10617, Taiwan.

机译:Y2O3势垒层对TiO2纳米管阵列的表面改性:控制染料敏化太阳能电池中的电荷复合动力学M Lu LuYin LinD 台湾大学化学工程系,台湾台北10617。

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摘要

Fast electron transport, large specific surface area, and slow interfacial electron recombination are indispensable features for efficient photoelectrodes of dye-sensitized solar cells (DSSCs). Highly ordered TiO2 nanotubes (TNT) with advanced architecture of high surface-to-volume ratio and open-up geometry for providing direct electron/ion transport channels is applied on a flexible photoanode in this study. Because several micrometers of semiconductor are required for the diffusion of electrons, which are surrounded by electron acceptors at a distance of only several nanometers, a wide band gap barrier layer of Y2O3 is coated on TNT to retard back-transfer of electrons to the electrolyte or to the oxidized dye molecules by electrodepositing Y(OH)_3 on the TNT surfaces and subsequently annealing the samples. By adjusting the charge capacity for Y(OH)_3 etectrodeposition, the charge recombination dynamics in the pertinent DSSC can be easily controlled. This barrier layer also enhances dye adsorption and therefore increases the volume of the optically active component due to the more basic surface of Y2O3 for more carboxyl groups in a dye molecule adsorbing onto the surface. A higher light-to-power conversion efficiency (η) of 6.52% is obtained for the pertinent DSSC compared with a reference cell with non-coated TNT (η) = 5.35%), exhibiting an enhancement of 22% in η.
机译:快速的电子传输,大的比表面积和缓慢的界面电子复合是染料敏化太阳能电池(DSSC)高效光电电极必不可少的功能。在这项研究中,将具有高表面积/体积比和开放几何结构以提供直接电子/离子传输通道的先进结构的高度有序的TiO2纳米管(TNT)用于柔性光电阳极。由于电子的扩散需要几微米的半导体,而电子仅在几纳米的距离内被电子受体包围,因此在TNT上涂覆了Y2O3的宽带隙势垒层,以阻止电子向电解质或电解质的反向转移通过在TNT表面上电沉积Y(OH)_3并随后对样品进行退火,可以将氧化的染料分子氧化为氧化染料分子。通过调整Y(OH)_3电沉积的电荷容量,可以轻松控制相关DSSC中的电荷重组动力学。该阻挡层还增强了染料的吸附,因此由于Y2O3的碱性更强,染料分子中更多的羧基吸附到该表面上,因此光学活性组分的体积也增加了。与未涂覆TNT的参考电池(η= 5.35%)相比,相关DSSC的光功率转换效率(η)更高,为6.52%,在η中提高了22%。

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