Yu Ting, He Wanting, Jafari Maziar, Guner Tugrul, Li Pandeng, Siaj Mohamed, Izquierdo Ricardo, Sun Baoquan, Welch Gregory C, Yurtsever Aycan, Ma Dongling
Énergie, Matériaux et Télécommunications, Institut National de la Recherche Scientifique (INRS), Varennes, Québec, J3X 1S2, Canada.
Département de Chimie, Université du Québec à Montréal, Montréal, Québec, H2L 2C4, Canada.
Small Methods. 2022 Jan;6(1):e2100916. doi: 10.1002/smtd.202100916. Epub 2021 Dec 7.
It is highly desired to develop advanced characterization techniques to explore the 3D nanoscale morphology of the complicated blend film of ternary organic solar cells (OSCs). Here, ternary OSCs are constructed by incorporating the nonfullerene acceptor perylenediimide (PDI)-diketopyrrolopyrrole (DPP)-PDI and their morphology is characterized in depth to understand the performance variation. In particular, photoinduced force microscopy (PiFM) coupled with infrared laser spectroscopy is conducted to qualitatively study the distribution of donor and acceptors in the blend film by chemical identification and to quantitatively probe the segmentation of domains and the domain size distribution after PDI-DPP-PDI acceptor incorporation by PiFM imaging and data processing. In addition, the energy-filtered transmission electron microscopy with energy loss spectra is utilized to visualize the nanoscale morphology of ultrathin cross-sections in the configuration of the real ternary device for the first time in the field of photovoltaics. These measurements allow to "view" the surface and cross-sectional morphology and provide strong evidence that the PDI-DPP-PDI acceptor can suppress the aggregation of the fullerene molecules and generate the homogenous morphology with a higher-level of the molecularly mixed phase, which can prevent the charge recombination and stabilize the morphology of photoactive layer.
迫切需要开发先进的表征技术来探索三元有机太阳能电池(OSC)复杂共混膜的三维纳米级形态。在此,通过引入非富勒烯受体苝二酰亚胺(PDI)-二酮吡咯并吡咯(DPP)-PDI构建三元OSC,并对其形态进行深入表征以了解性能变化。特别地,进行了结合红外激光光谱的光诱导力显微镜(PiFM),通过化学识别定性研究共混膜中供体和受体的分布,并通过PiFM成像和数据处理定量探测引入PDI-DPP-PDI受体后畴的分割和畴尺寸分布。此外,在光伏领域首次利用带有能量损失谱的能量过滤透射电子显微镜来可视化真实三元器件结构中超薄横截面的纳米级形态。这些测量能够“观察”表面和横截面形态,并提供有力证据表明PDI-DPP-PDI受体可以抑制富勒烯分子的聚集,并产生具有更高分子混合相水平的均匀形态,这可以防止电荷复合并稳定光活性层的形态。