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首页> 外文期刊>Solar Energy >High efficiency and negligible hysteresis planar perovskite solar cells based on NiO nanocrystals modified TiO_2 electron transport layers
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High efficiency and negligible hysteresis planar perovskite solar cells based on NiO nanocrystals modified TiO_2 electron transport layers

机译:基于NIO纳米晶体改性TiO_2电子传输层的高效率和可忽略不计的滞后平面钙钛矿太阳能电池

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摘要

The great difference of electron mobility between TiO2 electron transport layers and perovskite layers in planar perovskite solar cells may lead to serious electron stacking in their interfaces, which further results in high electron recombination rates and photocurrent density-voltage hysteresis. The surface modification of TiO2 electron transport layers is an effective way to overcome the problem. Here, we report the successful fabrication of high efficiency and negligible hysteresis planar perovskite solar cells through modifying the TiO2 electron transport layers with p-type NiO nanocrystals. We find that the NiO nanocrystals form large numbers of NiO islands rather than homogeneous NiO films on the TiO2 electron transport layers. This special island-like morphology is propitious to maintain high light transmittance and induce large crystal grains and high crystallinity of perovskite layers. Furthermore, the device with NiO nanocrystals modification shows more effective electron extraction and lower charge accumulation than the pristine one. The champion device can achieve forward scanned and reverse-scanned efficiencies of 19.22% and 19.42%, respectively. Hence, it is a novel guideline toward facile surface modification of TiO2 electron transport layers for efficient and hysteresis-free planar perovskite solar cells.
机译:TiO2电子传输层和平面钙钛矿太阳能电池中的钙钛矿层之间的电子迁移率的巨大差异可能导致其界面中的严重电子堆叠,这进一步导致高电子复合速率和光电流密度 - 电压滞后。 TiO2电子传输层的表面改性是克服问题的有效方法。在这里,我们通过用p型NiO纳米晶体改变TiO2电子传输层,成功地制造了高效率和可忽略的磁滞平面钙钛矿太阳能电池。我们发现NIO纳米晶体在TiO 2电子传输层上形成大量的NiO岛,而不是均匀的NiO膜。这种特殊的岛状形态有利于保持高透光率,并诱导大晶粒和钙钛矿层的高结晶度。此外,具有NiO纳米晶体改性的装置显示比原始纳米萃取更有效的电子提取和较低的电荷累积。冠军设备可以分别实现19.22%和19.42%的前向扫描和逆转扫描效率。因此,它是用于无效和无滞后平面钙钛矿太阳能电池的TiO2电子传输层的面筋表面改性的新颖指南。

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