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首页> 外文期刊>Selected Topics in Quantum Electronics, IEEE Journal of >Toward Low-Cost, High-Efficiency, and Scalable Organic Solar Cells with Transparent Metal Electrode and Improved Domain Morphology
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Toward Low-Cost, High-Efficiency, and Scalable Organic Solar Cells with Transparent Metal Electrode and Improved Domain Morphology

机译:借助透明的金属电极和改进的畴形貌实现低成本,高效且可扩展的有机太阳能电池

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We review our recent progress toward realizing future low-cost, high-efficiency, and scalable organic solar cells (OSCs). First, we show that the transparent electrodes based on metallic nanostructure is a strong candidate as a replacement of conventional indium tin oxide (ITO) electrode due to their superior properties, such as high optical transparency, good electrical conductivity, and mechanical flexibility, and the versatility that these properties can be adjusted independently by changing the linewidth and thickness of the metal grid structure. Furthermore, we exploited the unique optical properties due to the excitation of surface plasmon resonance by the metallic nanogratings to enhance the light absorption of organic semiconductors, and demonstrated enhanced power conversion efficiency than devices made using ITO electrode. In addition, we also investigated a new device fabrication process with a focus on the photoactive layer formation, which produces the most optimum bulk-heterojunction morphology compared with conventional annealing-based methods. Finally, we successfully demonstrated that these approaches are scalable to large-area and high-speed roll-to-roll processes. We believe that the works highlighted in this paper represent one step forward to realizing low-cost, high-efficiency, and large-area OSCs.
机译:我们回顾了在实现未来的低成本,高效率和可扩展的有机太阳能电池(OSC)方面的最新进展。首先,我们证明基于金属纳米结构的透明电极由于其优越的性能(例如高的光学透明性,良好的导电性和机械柔韧性)以及传统的铟锡氧化物(ITO)电极的替代而成为了强有力的候选者。这些特性可以通过更改金属栅格结构的线宽和厚度来独立调整。此外,由于金属纳米光栅激发了表面等离子体激元共振,我们利用了独特的光学性能来增强有机半导体的光吸收,并证明了与使用ITO电极制成的器件相比,功率转换效率得到了提高。此外,我们还研究了以光敏层形成为重点的新器件制造工艺,与传统的基于退火的方法相比,该工艺可产生最佳的体-异质结形态。最后,我们成功地证明了这些方法可扩展到大面积和高速卷对卷过程。我们认为,本文重点介绍的工作代表了实现低成本,高效率和大面积OSC的一步。

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