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Influence of Hole Mobility on Charge Separation and Recombination Dynamics at Lead Halide Perovskite and Spiro-OMeTAD Interface

机译:铅卤化物钙钛矿和螺旋 - omeetad界面对电荷分离和重组动力学的影响

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摘要

High efficiency lead halide perovskite solar cells employ spiro-OMeTAD or PTAA as a hole transporting material. This type of hole conductor requires dopants mainly to improve hole mobility. Although such doping has improved solar cell performance, in particular open circuit photovoltage and fill factor, the mechanism of the improvement has rarely been elucidated. Here, we demonstrate influence of dopants in spiro-OMeTAD on interfacial charge separation and recombination processes for a MAPbI(3) perovskite film sandwiched by an m-TiO2 film and a spiro-OMeTAD layer by employing a series of transient absorption spectroscopies. The interfacial charge recombination time was significantly retarded by the doping. We propose that the retardation of the charge recombination originates from relatively longer distance of holes from the perovskite/spiro-OMeTAD interface owing to the increased hole mobility by the doping, potentially increasing Voc of the solar cell.
机译:高效铅卤化卤化钙钙钛矿太阳能电池均采用螺纹孔或PTAA作为空穴传输材料。 这种类型的孔导体主要需要掺杂剂,以改善空穴迁移率。 虽然这种掺杂具有改善的太阳能电池性能,特别是开路光电电压和填充因子,但是改善的机制很少被阐明。 在这里,我们通过采用一系列瞬态吸收光谱,证明刺激剂对螺嘟数族肌肌腱上的互晶电荷分离和重组过程的影响,通过采用一系列瞬态吸收光谱法。 掺杂显着延迟了界面电荷重组时间。 我们提出,由于掺杂,潜在地增加了太阳能电池的电源,所以由于掺杂的空穴迁移率增加,因此电荷重组的延迟来自钙钛矿/螺纹孔隙界面的孔中的相对较长的距离。

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