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Dye-Sensitized Solar Cells for Efficient Solar and Artificial Light Conversion

机译:染料敏化太阳能电池,用于高效的太阳能和人工光转换

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Progress in dye-sensitized solar cells (DSSCs) has been benchmarked with N719 dye-based devices. However, power conversion efficiency (PCE) improvements performed in low-energy-performing devices cannot be extrapolated to high-performing ones. This points to the need for using a high PCE reference DSSC device, which preferably should be possible for preparation using readily available commercial reactants and parts. This study reports an optimized DSSC prepared with commercial reactants, displaying a PCE of up to 9.84% under simulated solar light and of 28.7% under artificial room light. The efficient light harvesting in the photoanode and electron recombination suppression in the photoanode/electrolyte interface were systematically optimized; the thickness and light-scattering ability of the photoanode mesoporous layers were tuned to maximize light harvesting and minimize the recombination losses. Electron back recombination with electrolyte was minimized using a TiO_(2) blocking layer and treating the mesoporous layer of TiO_(2) with TiCl_(4). Finally, despite the use of a light-scattering TiO_(2) coating over the mesoporous layer, the use of a light reflection layer applied to the back of the devices proved to improve the PCE further.
机译:染料敏化太阳能电池(DSSCs)的进展已经用N719染料的装置基准测试。然而,在低能量执行设备中执行的电力转换效率(PCE)不能推断为高性能。这一点需要使用高PCE参考DSSC器件,其优选地,可以使用易于获得的商业反应物和零件制备。本研究报告了用商业反应物制备的优化DSSC,在模拟的太阳灯下显示PCE高达9.84%,在人造室灯下的28.7%。电光/电解质界面中光电码和电子复合抑制中的有效光收获系统地优化;调整光电码介孔层的厚度和光散射能力以最大化光收集并最小化重组损失。使用TiO_(2)阻断层最小化与电解质的电子背重组,并用TiCl_(4)处理TiO_(2)的中孔层。最后,尽管在中孔层上使用了光散射TiO_(2)涂层,但是在所述器件背面涂覆的光反射层证明了进一步改善PCE。

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