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首页> 外文期刊>ACS applied materials & interfaces >A Chemometric Approach for the Sensitization Procedure of ZnO Flowerlike Microstructures for Dye-Sensitized Solar Cells
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A Chemometric Approach for the Sensitization Procedure of ZnO Flowerlike Microstructures for Dye-Sensitized Solar Cells

机译:用于染料敏化太阳能电池的ZnO花状微结构敏化程序的化学计量学方法

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In this paper, a methodology for the streamlining of the sensitization procedure of flowerlike ZnO nanostructures for dye-sensitized solar cells (DSCs) is reported. The sensitization of ZnO surface with ruthenium-based complexes is a particularly critical process, since one has to minimize the dissolution of surface Zn atoms by the protons released from the dye molecules, leading to the formation of Zn~(2+)/dye complexes. The fine-tuning of the experimental parameters, such as the dye loading time, the dye concentration, and the pH of the sensitizing solution, performed through a multivariate optimization by means of a chemometric approach, is here reported. The dye loading procedure was optimized using ZnO microparticles with nanostructured protrusions, synthesized by a simple and low-cost hydrothermal process. Mild reaction conditions were used, and wurtzite-like crystalline structure with a relatively high surface area was obtained once the reaction process was completed. After dispersion of ZnO flowerlike particles in an acetic acid-based solution, a 14 μm-thick ZnO layer acting as DSC photoanode was fabricated. The optimized sensitization procedure allowed minimizing the instability of ZnO surface in contact with acidic dyes, avoiding the formation of molecular agglomerates unable to inject electrons in the ZnO conduction band, achieving good results in the photoconversion efficiency. Moreover, the photoharvesting properties were further enhanced by adding N-methylbenzimidazole into the iodine-based liquid electrolyte. Such an additive was proposed here for the first time in combination with a ZnO photoelectrode, helping to reduce an undesired recombination between the photoinjected electrons and the oxidized redox mediator.
机译:在本文中,报告了一种用于简化染料敏化太阳能电池(DSC)的花状ZnO纳米结构敏化程序的方法。用钌基络合物敏化ZnO表面是一个特别关键的过程,因为必须最小化从染料分子释放的质子对表面Zn原子的溶解,从而形成Zn〜(2 +)/染料络合物。本文报道了通过化学计量学方法通过多变量优化对实验参数进行的微调,例如染料加载时间,染料浓度和敏化溶液的pH。使用具有纳米结构突起的ZnO微粒优化了染料加载程序,该微粒是通过简单且低成本的水热工艺合成的。使用温和的反应条件,一旦反应过程完成,便获得具有相对高表面积的纤锌矿状晶体结构。将ZnO花状颗粒分散在乙酸基溶液中后,制成14微米厚的ZnO层作为DSC光电阳极。优化的敏化程序可以使与酸性染料接触的ZnO表面的不稳定性最小化,避免了无法在ZnO导带中注入电子的分子团聚物的形成,从而在光转换效率方面取得了良好的结果。此外,通过将N-甲基苯并咪唑添加到基于碘的液体电解质中,进一步提高了光收集性能。在此首次提出将这种添加剂与ZnO光电极结合使用,以帮助减少光注入电子与氧化还原介体之间的不良重组。

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