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Amino-functionalized conjugated polymer electron transport layers enhance the UV-photostability of planar heterojunction perovskite solar cells

机译:氨基官能化的共轭聚合物电子传输层增强了平面异质结钙钛矿太阳能电池的紫外光稳定性

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摘要

In this study, for the first time, we report a solution-processed amino-functionalized copolymer semiconductor (PFN-2TNDI) with a conjugated backbone composed of fluorine, naphthalene diimide, and thiophene spacers as the electron transporting layer (ETL) in n–i–p planar structured perovskite solar cells. Using this copolymer semiconductor in conjunction with a planar n–i–p heterojunction, we achieved an unprecedented efficiency of ∼16% under standard illumination test conditions. More importantly, the perovskite devices using this polymer ETL have shown good stability under constant ultra violet (UV) light soaking during 3000 h of accelerated tests. Various advanced spectroscopic characterizations, including ultra-fast spectroscopy, ultra-violet photoelectron spectroscopy and electronic impedance spectroscopy, elucidate that the interaction between the functional polymer ETL and the perovskite layer plays a critical role in trap passivation and thus, the device UV-photostability. We expect that these results will boost the development of low temperature solution-processed organic ETL materials, which is essential for the commercialization of high-performance and stable, flexible perovskite solar cells.
机译:在本研究中,我们首次报道了溶液处理的氨基官能化共聚物半导体(PFN-2TNDI),其共轭骨架由氟,萘二酰亚胺和噻吩间隔物组成,作为n-中的电子传输层(ETL)。 i–p平面结构钙钛矿太阳能电池。结合平面n–i–p异质结使用这种共聚物半导体,在标准照明测试条件下,我们实现了空前的效率〜16%。更重要的是,使用这种聚合物ETL的钙钛矿设备在加速测试3000小时期间,在恒定的紫外线(UV)浸泡下显示出良好的稳定性。包括超快光谱,紫外光电子光谱和电子阻抗光谱在内的各种先进的光谱表征阐明了功能聚合物ETL和钙钛矿层之间的相互作用在陷阱钝化中起着至关重要的作用,因此对器件的紫外光稳定性也起着至关重要的作用。我们希望这些结果将促进低温溶液处理的有机ETL材料的开发,这对于高性能,稳定,柔性钙钛矿太阳能电池的商业化至关重要。

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