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Photoanodes with mesoporous TiO2 beads and nanoparticles for enhanced performance of CdS/CdSe quantum dot co-sensitized solar cells

机译:具有介孔TiO2珠和纳米颗粒的光阳极,可增强CdS / CdSe量子点共敏化太阳能电池的性能

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Photoanode is a critically important component in quantum dot sensitized solar cell (QDSC), and its configuration will exert a tremendous influence on the cell performance. In this paper, submicrometer-sized mesoporous TiO2 beads were prepared for QDSC application in view of their high specific surface area, superior light scattering and easy electrolyte penetration. Two configurations for the photoanodes were designed and studied with mesoporous TiO2 beads combined with nanoparticles: a double-layer configuration composed of a thick bead layer on top of a thin nanoparticle layer, and a mixture structure made of mixed mesoporous TiO2 beads and nanoparticles. Photovoltaic results showed that double-layer and mixture configurations delivered power conversion efficiencies of 4.33% and 4.65%, respectively, achieving impressive improvement compared to the single-layer films made from mesoporous beads or nanoparticles (similar to 4%). The mesoporous TiO2 beads served as scattering layer or scattering centers to enhance light scattering and boost the photocurrent while the incorporation of nanoparticles into the voids between mesoporous beads further increased the surface area for QD loading and led to better connection between the neighboring beads. Electrochemical impedance spectroscopy analysis revealed a retarded charge recombination for the mesoporous beads when combined with nanoparticles, reflected in the increase of open circuit voltage. (C) 2014 Elsevier Ltd. All rights reserved.
机译:光电阳极是量子点敏化太阳能电池(QDSC)中至关重要的组件,其结构将对电池性能产生巨大影响。鉴于亚微米级的介孔TiO2珠具有高的比表面积,优异的光散射和易于渗透的电解质特性,因此为QDSC应用制备了亚微米级的介孔TiO2珠。设计并研究了介孔TiO2珠与纳米粒子相结合的光阳极的两种构型:双层结构,其由位于纳米颗粒薄层顶部的厚珠层组成,以及由混合的介孔TiO2珠和纳米粒子组成的混合结构。光伏结果表明,双层和混合结构分别提供了4.33%和4.65%的功率转换效率,与中孔珠或纳米颗粒(约4%)制成的单层膜相比,实现了令人印象深刻的改进。介孔TiO2珠充当散射层或散射中心,以增强光散射并增强光电流,而将纳米颗粒掺入介孔珠之间的空隙中进一步增加了QD负载的表面积,并导致相邻珠之间的更好连接。电化学阻抗谱分析表明,当与纳米粒子结合时,介孔珠的电荷重组受阻,反映在开路电压的增加中。 (C)2014 Elsevier Ltd.保留所有权利。

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