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首页> 外文期刊>ACS applied materials & interfaces >Scanning Probe Microscopy Analysis of Nonfullerene Organic Solar Cells
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Scanning Probe Microscopy Analysis of Nonfullerene Organic Solar Cells

机译:扫描探针显微镜分析非氟联有机太阳能电池

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In this work, scanning probe microscopies (SPMs) are used for the analysis of PBDB-T, ITIC, and PBDB-T:ITIC layers of solar cells (OSCs). Scanning tunneling microscopy (STM) images of PBDB-T reveal that thin films (<1 nm) tend to form worm-like pattern (amorphous type) domains with an average chain-to-chain distance of 950 pm; likewise, STM images of ITIC show that side arms form chain-like patterns. STM images of PBDB-T:ITIC blend suggest why PBDB-T domains could facilitate charge dissociation. Further, a strong interchain pi-pi interaction of the ITIC molecules could promote self-organization, and under the mutual interaction with the PBDB-T polymer, it could influence the pathway formation for electron transport. Moreover, when correlating electrostatic force microscopy (EFM) and photoconductive atomic force microscopy (pc-AFM), the blend morphology and its electrical/electronic properties are determined; the ideal domain size of PBDB-T:ITIC blend phases for maximizing the generated photocurrent is 15-35 nm. Furthermore, phase contrast and surface electric potential characteristics with Kelvin probe force microscopy (KPFM) are measured to examine additional details about the surface and potential changes due to the domain differences in the active layer. OSCs based on the nonfullerene PBDB-T:ITIC active layer reach an average power conversion efficiency (PCE) of 9.1% (best 9.2%).
机译:在这项工作中,扫描探针显微镜(SPM)用于分析PBDB-T,ITIC和PBDB-T:太阳能电池(OSC)的ITIC层。 PBDB-T的扫描隧道显微镜(STM)图像显示薄膜(<1nm)倾向于形成蠕虫样图案(无定形型)结构域,平均链距为950μm;同样,ITIC的STM图像显示侧臂形状的链状图案。 PBDB-T的STM图像:Itic Blend表明为什么PBDB-T领域可以促进充电解离。此外,ITIC分子的强不良的PI-PI相互作用可以促进自组织,并且在与PBDB-T聚合物的相互相互作用下,它可以影响电子传输的途径形成。此外,当与静电力显微镜(EFM)和光电导电原子力显微镜(PC-AFM)相关时,确定混合形态及其电气/电子性质; PBDB-T的理想域尺寸:用于最大化产生的光电流的ITIC混合阶段为15-35nm。此外,测量具有kelvin探针力显微镜(KPFM)的相位对比度和表面电势特性以检查有关表面的表面的附加细节和由于有源层的域差异而导致的潜在变化。基于非替代PBDB-T的OSCS:ITIC活性层达到9.1%的平均功率转换效率(PCE)(最佳9.2%)。

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