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Thermally Stable Mesoporous Perovskite Solar Cells Incorporating Low-Temperature Processed Graphene/Polymer Electron Transporting Layer

机译:结合了低温加工石墨烯/聚合物电子传输层的热稳定介孔钙钛矿太阳能电池

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In the short time since its discovery, perovskite solar cells (PSCs) have attained high power conversion efficiency but their lack of thermal stability remains a barrier to commercialization. Among the experimentally accessible parameter spaces for optimizing performance, identifying an electron transport layer (ETL) that forms a thermally stable interface with perovskite and which is solution-processable at low-temperature will certainly be advantageous. Herein, we developed a mesoporous graphene/polymer composite with these advantages when used as ETL in CH3NH3PbI3 PSCs, and a high efficiency of 13.8% under AM 1.5G solar illumination could be obtained. Due to the high heat transmission coefficient and low isoelectric point of mesoporous graphene-based ETL, the PSC device enjoys good chemical and thermal stability. Our work demonstrates that the mesoporous graphene-based scaffold is a promising ETL candidate for high performance and thermally stable PSCs.
机译:自发现以来,钙钛矿太阳能电池(PSC)在很短的时间内就实现了高功率转换效率,但其热稳定性不足仍然是商业化的障碍。在用于优化性能的实验上可访问的参数空间中,确定与钙钛矿形成热稳定界面并且可在低温下固溶的电子传输层(ETL)无疑是有利的。本文中,我们开发了一种中孔石墨烯/聚合物复合材料,当在CH3NH3PbI3 PSC中用作ETL时,具有这些优点,在​​AM 1.5G太阳光照下可获得13.8%的高效率。由于介孔石墨烯基ETL的高导热系数和低等电点,PSC器件具有良好的化学和热稳定性。我们的工作表明,基于介孔石墨烯的支架是高性能和热稳定PSC的有前途的ETL候选者。

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