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如何在最大功率点稳定高效倒置柔性钙钛矿太阳能电池的电流

How to Stabilize the Current of Efficient Inverted Flexible Perovskite Solar Cells at the Maximum Power Point.

作者信息

Ma Xingjuan, Peng Wenli, Jiang Shusen, Li Mingpo, Zhang Aihua, Li Cheng, Li Xin

机构信息

School of Electronic Science and Engineering, Xiamen University, Xiamen, 361005, China.

Pen-Tung Sah Institute of Micro-Nano Science and Technology, Xiamen University, Xiamen, 361005, China.

出版信息

Small. 2024 Jun;20(26):e2310568. doi: 10.1002/smll.202310568. Epub 2024 Jan 18.

Abstract

Inverted flexible perovskite cells (fPSCs) have attracted much attention for their high efficiency and power per weight. Still, the steady-state output is one of the critical factors for their commercialization. In this paper, it is found that the steady-state current of inverted fPSCs based on nickel oxide nanoparticles (n-NiO) continuously decreases under light illumination. Conversely, those based on magnetron-sputtered NiO (sp-NiO) exhibit the opposite result. Based on visualization of ion migration in the photoluminescence (PL) imaging microscopy tests, the discrepancies in the buried surfaces lead to the differences in ion migration in perovskite films, which triggers the temporary instability of the output current of devices during operation. The DFT theoretical calculation and experimental results reveal that NiO films with different contents of Ni vacancies can modulate the crystallization of the perovskite films on the NiO surfaces. Tuning the crystallization of the perovskite films is essential to stabilize the output current of fPSCs at a steady state. To demonstrate that, capsaicin is doped into the perovskite solutions to improve the quality of the perovskite buried interface. Finally, the corresponding fPSCs exhibit outstanding efficiency and stability during operation. These results provide valuable scientific guidance for fabricating fPSCs with stable operation under illumination conditions.

摘要

倒置柔性钙钛矿电池(fPSC)因其高效率和高功率重量比而备受关注。然而,稳态输出是其商业化的关键因素之一。本文发现,基于氧化镍纳米颗粒(n-NiO)的倒置fPSC的稳态电流在光照下会持续下降。相反,基于磁控溅射NiO(sp-NiO)的fPSC则呈现相反的结果。基于光致发光(PL)成像显微镜测试中离子迁移的可视化,掩埋表面的差异导致钙钛矿薄膜中离子迁移的差异,这引发了器件在运行过程中输出电流的暂时不稳定。DFT理论计算和实验结果表明,具有不同镍空位含量的NiO薄膜可以调节NiO表面钙钛矿薄膜的结晶。调节钙钛矿薄膜的结晶对于在稳态下稳定fPSC的输出电流至关重要。为了证明这一点,将辣椒素掺杂到钙钛矿溶液中以改善钙钛矿掩埋界面的质量。最后,相应的fPSC在运行过程中表现出出色的效率和稳定性。这些结果为制造在光照条件下稳定运行的fPSC提供了有价值的科学指导。

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