量子点敏化太阳能电池

Y. Tachibana, H. Y. Akiyama, K. Umekita, Y. Otsuka, T. Torimoto, S. Kuwabata
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引用次数: 149

摘要

在纳米多孔TiO2薄膜上合成了金属硫化物(CdS或PbS)量子点,用于太阳能转换器件。以量子点敏化TiO2薄膜为基础,研究了几种电解质在三明治型再生太阳能电池中的氧化还原活性。通过优化多硫电解质的组成,获得了较高的IPCE。与PbS相比,CdS量子点显示出更高的IPCE,这与量子点数量和尺寸增加时光收集效率的增加有关。相比之下,我们观察到PbS的QD尺寸依赖于IPCE,这可能是由于相对于TiO2导带边缘的导带边缘电位移位(与量子尺寸效应相关),或者是由于PbS导带中热电子注入和电子弛豫之间的动力学竞争。我们还提出了一种添加了NaSCN的I3 -/I-氧化还原电解质可以用来提高太阳能电池的性能。SCN-离子可以附着在QD表面形成壳型结构,防止光腐蚀反应,并作为中间电子态诱导QD再还原的序步电子转移反应。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Quantum dot sensitized solar cells
Metal sulfide (CdS or PbS) quantum dots were synthesized in nanoporous TiO2 films for applications in solar energy conversion devices. Several electrolytes were investigated for the functioning redox activity in sandwich type regenerative solar cells, based on the quantum dots sensitized TiO2 film. A high IPCE was attained by optimizing the polysulfide electrolyte composition. The CdS QD shows a higher IPCE, compared to PbS, related to an increased light harvesting efficiency when the number and size of the QDs intensified. In contrast, QD size dependence on the IPCE was observed for the PbS, likely resulting from the conduction band edge potential shift (associated with quantum size effect) relative to the TiO2 conduction band edge, or the kinetic competition between the hot electron injection and the electron relaxation in the PbS conduction band. We also propose that an I3 -/I- redox electrolyte, with NaSCN addition, can be employed to enhance the solar cell performance. SCN- ions may attach to the QD surface forming a shell type structure to prevent the photocorrosion reaction, and act as an intermediate electronic state to induce the sequential step electron transfer reactions for the QD re-reduction.
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