Zheng Yangchao, Zhao Jingjing, Liang Huanpeng, Zhao Zhenmin, Kan Zhipeng
Center on Nanoenergy Research, Guangxi Colleges and Universities Key Laboratory of Blue Energy and Systems Integration, Carbon Peak and Neutrality Science and Technology Development Institute, School of Physical Science & Technology, Guangxi University, Nanning, 530004, China.
State Key Laboratory of Featured Metal Materials and Life-cycle Safety for Composite Structures, Nanning, 530004, China.
Adv Sci (Weinh). 2023 Sep;10(26):e2302460. doi: 10.1002/advs.202302460. Epub 2023 Jul 3.
The cathode interlayer plays a vital role in organic solar cells, which can modify the work function of electrodes, lower the electron extraction barriers, smooth the surface of the active layer, and remove solvent residuals. However, the development of organic cathode interlayer lags behind the rapidly improved organic solar cells because their intrinsic high surface tension can lead to poor contact with the active layers. Herein, a double-dipole strategy is proposed to enhance the properties of organic cathode interlayers, which is induced by incorporating nitrogen- and bromine-containing interlayer materials. To verify this approach, the state-of-the-art active layer composed of PM6:Y6 and two prototypical cathode interlayer materials, PDIN and PFN-Br is selected. Using the cathode interlayer PDIN: PFN-Br (0.9:0.1, in wt.%) in the devices can reduce the electrode work function, suppress the dark current leakage, and improve charge extractions, leading to enhanced short circuit current density and fill factor. The bromine ions tend to break from PFN-Br and form a new chemical bond with the silver electrode, which can adsorb extra dipoles directed from the interlayer to silver. These findings on the double-dipole strategy provide insights into the hybrid cathode interlayers for efficient non-fullerene organic solar cells.
阴极夹层在有机太阳能电池中起着至关重要的作用,它可以改变电极的功函数,降低电子提取势垒,使活性层表面光滑,并去除溶剂残留。然而,有机阴极夹层的发展落后于快速改进的有机太阳能电池,因为其固有的高表面张力会导致与活性层的接触不良。在此,提出了一种双偶极策略来增强有机阴极夹层的性能,该策略是通过引入含氮和溴的夹层材料来实现的。为了验证这种方法,选择了由PM6:Y6组成的先进活性层以及两种典型的阴极夹层材料PDIN和PFN-Br。在器件中使用阴极夹层PDIN:PFN-Br(0.9:0.1,重量比)可以降低电极功函数,抑制暗电流泄漏,并改善电荷提取,从而提高短路电流密度和填充因子。溴离子倾向于从PFN-Br中脱离,并与银电极形成新的化学键,这可以吸附从夹层指向银的额外偶极。这些关于双偶极策略的发现为高效非富勒烯有机太阳能电池的混合阴极夹层提供了见解。