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首页> 外文期刊>Journal of Materials Chemistry, A. Materials for energy and sustainability >Mesoporous TiO2 beads for high efficiency CdS/ CdSe quantum dot co-sensitized solar cells
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Mesoporous TiO2 beads for high efficiency CdS/ CdSe quantum dot co-sensitized solar cells

机译:用于高效CdS / CdSe量子点共敏化太阳能电池的中孔TiO2珠

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Mesoporous TiO2 beads with a combined effective light scattering effect and large surface area were prepared and studied for quantum dot-sensitized solar cell (QDSC) application. The photoanode films were composed of submicrometer-sized beads consisting of packed TiO2 nanocrystallites. A power conversion efficiency up to 4.05% has been achieved for a CdS/CdSe quantum dot (QD) co-sensitized solar cell, which was constructed with the mesoporous TiO2 beads prepared with a two-step method, in which an optimal amount of ammonia was adopted to etch TiO2 spheres and achieve the desired porosity of the beads for QD adsorption. The high conversion efficiency was ascribed to a combined effect of the mesoporous structure, light scattering ability and good electrical conduction capability of the beads. It has been found that larger pores can be created by adding more ammonia during the solvothermal treatment, leading to easy penetration of the QDs into the inner pores of the mesoporous beads. An excessive amount of ammonia would lead to a low specific surface area and decrease of light scattering capability of the films. Electrochemical impedance spectroscopy analysis revealed a retarded charge recombination for the mesoporous TiO2 beads treated with ammonia in view of a decreased contact area of the beads with the electrolyte, reflected in the increase of both open circuit voltage and fill factor of the solar cells.
机译:制备了具有有效光散射效应和大表面积的中孔TiO2珠,并研究了其在量子点敏化太阳能电池(QDSC)中的应用。光电阳极膜由亚微米尺寸的珠子组成,该珠子由堆积的TiO2纳米微晶组成。 CdS / CdSe量子点(QD)共敏太阳能电池的功率转换效率达到4.05%,该太阳能电池是采用两步法制备的中孔TiO2珠构建的,其中氨的最佳量用TiO2球刻蚀TiO2球并实现QD吸附所需的微珠孔隙率。高转化效率归因于介孔结构,珠的光散射能力和良好的导电能力的综合作用。已经发现通过在溶剂热处理期间添加更多的氨可以产生较大的孔,从而导致QD容易渗透到中孔珠粒的内部孔中。过量的氨将导致低的比表面积并降低膜的光散射能力。电化学阻抗谱分析显示,用氨处理的中孔TiO2磁珠,由于其与电解质的接触面积减少而使电荷重组延迟,这反映在太阳能电池的开路电压和填充因子均增加。

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