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首页> 外文期刊>Journal of Materials Chemistry, A. Materials for energy and sustainability >Identifying the optimum thickness of electron transport layers for highly efficient perovskite planar solar cells
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Identifying the optimum thickness of electron transport layers for highly efficient perovskite planar solar cells

机译:确定高效钙钛矿平面太阳能电池的电子传输层的最佳厚度

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摘要

The fabrication of pinhole-free and compact electron transport layers is crucial for achieving high power conversion efficiency of perovskite solar cells. In this work, we report efficient perovskite solar cells using ultrathin TiO2 films (5-20 nm) as high-quality electron transport layers deposited by the atomic layer deposition technique. The as-prepared solar cells on FTO substrates show a high efficiency of 13.6%, employing the optimum 10 nm thick TiO2 layer. Furthermore, the flexible cells on PET substrates exhibit an efficiency of 7.2% with low-temperature-processed TiO2 layers at 80 degrees C. The effects of layer thicknesses on the cell performance are investigated to reveal the mechanism of high-performance, which is mainly attributed to high transmittance, low leakage current, and low charge transfer resistance and recombination rate. Our major findings are expected to provide a guide to design ultrathin compact electron transport layers for efficient perovskite solar cells.
机译:无针孔且紧凑的电子传输层的制造对于实现钙钛矿太阳能电池的高功率转换效率至关重要。在这项工作中,我们报告了使用超薄TiO2膜(5-20​​ nm)作为通过原子层沉积技术沉积的高质量电子传输层的高效钙钛矿太阳能电池。使用最佳的10 nm厚TiO2层,FTO基板上准备好的太阳能电池显示出13.6%的高效率。此外,PET基板上的柔性电池在80℃下经低温处理的TiO2层显示出7.2%的效率。研究了层厚度对电池性能的影响,以揭示高性能的机理,主要是归因于高透射率,低泄漏电流以及低电荷转移电阻和复合率。我们的主要发现有望为设计高效钙钛矿太阳能电池的超薄紧凑型电子传输层提供指导。

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