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Plasmonic Organic Solar Cells Employing Nanobump Assembly via Aerosol-Derived Nanoparticles

机译:通过气溶胶衍生的纳米颗粒采用纳米凸块组装的等离子体有机太阳能电池

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We report the effect of a nanobump assembly (NBA) constructed with molybdenum oxide (MoO_3) covering Ag nanoparticles (NPs) under the active layer on the efficiency of plasmonic polymer solar cells. Here, the NPs with precisely controlled concentration and size have been generated by an atmospheric evaporation/ condensation method and a differential mobility classification and then deposited on an indium tin oxide electrode via room temperature aerosol method. NBA structure is made by enclosing NPs with MoO_3 layer via vacuum thermal evaporation to isolate the undulated active layer formed onto the underlying protruded NBA. Simulated scattering cross sections of the NBA structure reveal higher intensities with a strong forward scattering effect than those from the flat buffer cases. Experimental results of the device containing the NBA show 24 enhancement in short-circuit current density and 18 in power conversion efficiency compared to the device with the flat MoO_3 without the NPs. The observed improvements are attributed to the enhanced light scattering and multireflection effects arising from the NBA structure combined with the undulated active layer in the visible and near-infrared regions. Moreover, we demonstrate that the NBA adopted devices show better performance with longer exciton lifetime and higher light absorption in comparison with the devices with Ag NPs incorporated flat poly(3,4-ethylenedioxythiophene):poly(styrenesulfonate) (PEDOT:PSS). Thus, the suggested approach provides a reliable and efficient light harvesting in a broad range of wavelength, which consequently enhances the performance of various organic solar cells.
机译:我们报道了用氧化钼 (MoO_3) 构建的纳米凸块组件 (NBA) 覆盖在活性层下的 Ag 纳米颗粒 (NPs) 对等离子体聚合物太阳能电池效率的影响。在这里,通过大气蒸发/冷凝方法和差异迁移率分类生成了浓度和大小精确控制的NPs,然后通过室温气溶胶法沉积在氧化铟锡电极上。NBA结构是通过真空热蒸发将NP与MoO_3层封闭起来,以隔离形成的起伏活性层,形成在下面突出的NBA上。NBA结构的模拟散射截面显示出比平坦缓冲器情况下更高的强度和更强的前向散射效应。包含NBA的器件的实验结果表明,与没有NP的平坦MoO_3器件相比,短路电流密度提高了24%,功率转换效率提高了18%。观察到的改进归因于NBA结构产生的增强光散射和多反射效应,以及可见光和近红外区域的起伏活动层。此外,我们证明,与含有 Ag NPs 的:p器件相比,NBA 采用的器件表现出更好的性能,具有更长的激子寿命和更高的光吸收率(PEDOT:PSS)。因此,所建议的方法在很宽的波长范围内提供了可靠和有效的光收集,从而增强了各种有机太阳能电池的性能。

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