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Activating Old Materials with New Architecture: Boosting Performance of Perovskite Solar Cells with H 2 O‐Assisted Hierarchical Electron Transporting Layers

机译:通过新架构激活旧材料:借助H 2 O辅助分层电子传输层提高钙钛矿太阳能电池的性能

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The breakthrough of organometal halide perovskite solar cells (PSCs) based on mesostructured composites is regarded as a viable member of next generation photovoltaics. In high efficiency PSCs, it is crucial to finely optimize the charge dynamics and optical properties matching between the perovskites and electron transporting materials to relax the trade‐off between the optical and electrical requirements. Here, a simple antipolar route with H 2 O as the additive is proposed to prepare hierarchical electron transporting layers to boost the efficiency of dopant‐free PSCs. The photovoltaic performance of the PSCs is enhanced owing to increased light‐scattering, improved Ostwald ripening, and photo‐generated electron extraction. Optimization of the H 2 O addition enables a valid power conversion efficiency of 19.9% (reverse scan: 20.02%) to be achieved. The device can retain more than 90% of its initial performance after storage in air more than 30 days. These results are inspiring in that they present that a mesoporous transporting layer could be easily re‐constructed to hierarchical architecture by the antipolar method to further improve the performance of PSCs.
机译:基于介孔结构复合材料的有机金属卤化物钙钛矿太阳能电池(PSC)的突破被认为是下一代光伏技术的可行成员。在高效率的PSC中,至关重要的是精细优化钙钛矿与电子传输材料之间的电荷动力学和光学特性匹配,以放松光学和电气要求之间的权衡。在此,提出了一种简单的以H 2 O为添加剂的反极性路线,以制备分层的电子传输层,以提高无掺杂PSC的效率。由于光散射的增加,奥斯特瓦尔德熟化的改善以及光生电子的提取,PSC的光伏性能得以增强。通过优化H 2 O的添加,可以实现19.9%的有效功率转换效率(反向扫描:20.02%)。在空气中存放30天以上后,该设备可以保留其90%以上的初始性能。这些结果令人鼓舞,因为它们表明可以通过反极性方法轻松地将介孔传输层重构为分层结构,从而进一步提高PSC的性能。

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