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首页> 外文期刊>ACS Omega >Interfacial Modification of Photoanode|Electrolyte Interface Using Oleic Acid Enhancing the Efficiency of Dye-Sensitized Solar Cells
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Interfacial Modification of Photoanode|Electrolyte Interface Using Oleic Acid Enhancing the Efficiency of Dye-Sensitized Solar Cells

机译:使用油酸对光阳极|电解质界面进行界面修饰,提高了染料敏化太阳能电池的效率

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Dye-sensitized solar cells (DSSCs) are useful devices in converting renewable solar energy into electrical energy. In DSSCs, the triiodide reduction at the surface of TiO2 is one of the detrimental processes that limit the realization of high efficiencies of the device. To alleviate the active sites available on the semiconductor surface for this detrimental process, the interfacial modification of the dye-adsorbed TiO2|electrolyte interface has been attempted by coadsorption of oleic acid (OA) over the TiO2 surface. Thus, the modified cell exhibited a higher efficiency (η) of 12.9% under one sun illumination when compared with that of the unmodified cell (η = 11.1%). To provide an insight into the OA anchoring and dynamics of electron transport at the photoanode|electrolyte interface, molecular spectroscopic and electrochemical impedance spectroscopic analyses were carried out. A red shift in the optical absorption spectrum was observed after the addition of OA to dye-adsorbed TiO2. The binding of OA to TiO2 surface was found to be through bridging bidentate type. Mott–Schottky analyses of the DSSCs under dark conditions were made to probe the shift in the Fermi level of TiO2 upon OA modification. In addition, the F?rster resonance energy transfer (FRET) has been found between OA and N719 dye. Thus, the red shift in the optical absorption, enhanced electron-transfer kinetics, and FRET contributes to the observed enhancement in the efficiency of the device containing OA-modified photoanode.
机译:染料敏化太阳能电池(DSSC)是将可再生太阳能转换为电能的有用设备。在DSSC中,TiO 2表面的三碘化物还原是有害工艺之一,其限制了器件的高效率实现。为了减轻在半导体表面上可用于该有害过程的活性位点,已经尝试通过在TiO 2表面上共吸附油酸(OA)来对染料吸附的TiO 2电解质界面进行界面改性。因此,与未修饰的电池(η= 11.1%)相比,在一个阳光照射下,修饰的电池表现出更高的效率(η)为12.9%。为了深入了解OA锚定和在光阳极界面的电子传输动力学,进行了分子光谱和电化学阻抗光谱分析。向染料吸附的TiO2中添加OA后,观察到光吸收光谱出现红移。发现OA与TiO 2表面的结合是通过桥接双齿型。进行了黑暗条件下DSSCs的Mott-Schottky分析,以研究OA改性后TiO2费米能级的变化。此外,在OA和N719染料之间发现了酯共振能量转移(FRET)。因此,光学吸收的红移,增强的电子转移动力学和FRET有助于观察到的包含OA修饰的光电阳极的器件效率的提高。

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