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Self-Assembled TiO2 with Increased Photoelectron Production, and Improved Conduction and Transfer: Enhancing Photovoltaic Performance of Dye-Sensitized Solar Cells

机译:自组装的TiO2,其光电子产量增加,并且导电和转移性能得到改善:增强了染料敏化太阳能电池的光伏性能

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Highly crystalline mesoporous anatase TiO2 is prepared through supramolecular self-assembly and by utilizing cetyltrimethylammonium bromide (CTAB) as templating material. Photoanodes of dye-sensitized solar cells (DSSCs) made from these TiO2 nanoparticles are found to have a high specific surface area of 153 m~2/g and high surface roughness. Optical absorption spectroscopy studies reveal that the photoanode films adsorb four times more dye than films made of commercial P25 TiO2. Mercury porosimetry and field emission scanning electron microscope (FESEM) studies show hierarchical macro- and meso-porosity of the photoanode films leading to better dye and electrolyte percolation, combined with improved electron conduction pathways compared to P25 films. Electrochemical impedance studies confirm lower impedance and higher electron lifetime in the synthesized mesoporous TiO2 films compared to P25 films. Higher photovoltaic efficiency was recorded of cells made from the synthesized mesoporous TiO2 in comparison to the corresponding cells made from P25. Incident-photon-to-current efficiency data provided critical understanding of recombination kinetics, and provided proof of Mie scattering by the self-assembled submicrometer sized TiO2 aggregates and the macropores in their structure. The scattering phenomenon was further corroborated by diffused reflectance studies. An in-depth analysis of CTAB-templated mesoporous TiO2 has been conducted to show how it can be a good candidate photoanode material for enhancing the performance of DSSCs.
机译:通过超分子自组装和利用十六烷基三甲基溴化铵(CTAB)作为模板材料制备高结晶介孔锐钛矿型TiO2。发现由这些TiO2纳米颗粒制成的染料敏化太阳能电池(DSSC)的光阳极具有153 m〜2 / g的高比表面积和高表面粗糙度。光学吸收光谱研究表明,光阳极膜吸收的染料比市售P25 TiO2膜吸收的染料多四倍。汞孔隙率法和场发射扫描电子显微镜(FESEM)研究表明,与P25膜相比,光阳极膜的层级大孔和中孔可导致更好的染料和电解质渗透,并具有改进的电子传导途径。电化学阻抗研究证实,与P25薄膜相比,合成的介孔TiO2薄膜具有更低的阻抗和更长的电子寿命。与由P25制成的相应电池相比,由合成的中孔TiO 2制成的电池记录了更高的光伏效率。光子电流效率数据提供了对重组动力学的关键理解,并通过自组装的亚微米级TiO2聚集体及其结构中的大孔提供了Mie散射的证据。漫反射研究进一步证实了散射现象。已经进行了CTAB模板介孔TiO2的深入分析,以显示它如何成为增强DSSC性能的良好候选光阳极材料。

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