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The Importance of Perovskite Pore Filling in Organometal Mixed Halide Sensitized TiO2-Based Solar Cells

机译:钙钛矿孔填充在有机金属混合卤化物敏化的TiO2基太阳能电池中的重要性

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摘要

Emerging from the field of dye-sensitized solar cells, organometal halide perovskite-based solar cells have recently attracted considerable attention. In these devices, the perovskite light absorbers can also be used as charge transporting materials, changing the requirements for efficient device architectures. The perovskite deposition can vary from merely sensitizing the TiO2 electron transporting scaffold as an endowment of small nanoparticles, to completely filling the pores where it acts as both light absorber and hole transporting material in one. By decreasing the TiO 2 scaffold layer thickness, we change the solar cell architecture from perovskite-sensitized to completely perovskite-filled. We find that the latter case leads to improvements in device performance because higher electron densities can be sustained in the TiO2, improving electron transport rates and photovoltage. Importantly, the primary recombination pathway between the TiO2 and the hole transporting material is blocked by the perovskite itself. This understanding helps to rationalize the high voltages attainable on mesoporous TiO2-based perovskite solar cells. © 2014 American Chemical Society.
机译:从染料敏化太阳能电池领域涌现,基于有机金属卤化物钙钛矿的太阳能电池近来引起了相当大的关注。在这些设备中,钙钛矿光吸收剂也可以用作电荷传输材料,从而改变了对高效设备架构的要求。钙钛矿的沉积可以从仅将TiO2电子传输支架敏化为小纳米颗粒的赋形到完全填充孔,在其中它既充当光吸收剂又充当空穴传输材料。通过减小TiO 2支架层的厚度,我们将钙钛矿敏化的太阳能电池结构更改为完全钙钛矿填充的结构。我们发现后一种情况可以改善器件性能,因为可以在TiO2中维持较高的电子密度,从而改善了电子传输速率和光电压。重要的是,钙钛矿本身会阻止TiO2和空穴传输材料之间的主要复合路径。这种理解有助于合理化介孔TiO2基钙钛矿太阳能电池上可获得的高压。 ©2014美国化学学会。

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