利用小分子非富勒烯受体抑制高效倒置钙钛矿太阳能电池的J-V滞后

Mengge Wu, Pu Fan, S. Hou, Junsheng Yu
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引用次数: 0

摘要

钙钛矿具有吸收系数高、载流子迁移率高、激子结合能低等独特优势,在高性能钙钛矿太阳能电池(PSCs)中具有良好的应用前景。然而,PSC中的电流密度-电压(J-V)迟滞现象会降低测试精度,削弱器件的实际性能。本文提出了一种基于界面工程的简单方法来抑制迟滞现象,并系统分析了其深层的物理化学机理。通过在结晶过程中加入非富勒烯受体Y6,获得了密度更大且具有低密度缺陷态的连续钙钛矿薄膜,使得PSC显著抑制了J-V迟滞,迟滞差在最功率点由13.6%减小到1.9%。扫描电镜结果和能谱图表明,超薄Y6薄膜沉积在钙钛矿薄膜和PC61BM疏水电子传输层之间。Y6提高了材料的润湿性和匹配能级,使得光电流增大,PSC@Y6 high的功率转换效率高达17.5%。因此,这项工作表明,使用小分子非富勒烯受体进行界面工程是抑制J-V迟滞的一种很有前途的策略,限制了PSC的进一步商业化。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Suppressed J-V hysteresis in highly efficient inverted perovskite solar cells using small-molecule non-fullerene acceptor
Perovskite has attracted enormous research interest due to the unique advantages, such as high absorption coefficient, great carrier mobility, low exciton binding energy, etc., providing desirable applications in high-performance perovskite solar cells (PSCs). However, the current density-voltage (J-V) hysteresis phenomenon in PSC will reduce the testing accuracy and weaken the actual device performance. In this paper, a facile method based on interfacial engineering is proposed to suppress the hysteresis phenomenon and the deeper physicochemical mechanism is systematically analyzed. By incorporating non-fullerene acceptor Y6 in the crystallization process, a denser and continuous perovskite film with a low-density defect state is obtained, which affords PSC dramatically suppressed the J-V hysteresis with the hysteresis difference decreasing from 13.6% to 1.9% at the maximum power point. Furthermore, scanning electron microscope results and energy dispersive spectrum mappings suggest that ultrathin Y6 film is deposited between the perovskite film and the hydrophobic electron transport layer of PC61BM. The improvement of wettability and matching energy level caused by Y6, render the photocurrent increase and the power conversion efficiency of PSC@Y6 high up to 17.5%. Thus, this work demonstrates that interfacial engineering using small-molecule non-fullerene acceptor is a promising strategy to suppress the J-V hysteresis limiting further PSC commercialization.
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