首页> 外文会议>Conference on Organic Photovoltaics IV; Aug 7-8, 2003; San Diego, California, USA >Influence of the device architecture to the ITO surface treatment effects on organic solar cell performance
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Influence of the device architecture to the ITO surface treatment effects on organic solar cell performance

机译:器件架构对ITO表面处理对有机太阳能电池性能的影响

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In this work, we investigate the influence of different indium tin oxide (ITO) surface treatments on the performance of organic solar cells with different device architectures. Two layer cells with different layer hierarchy (ITO/copper phthalocyanine (CuPc)/fullerene (C_(60))/Al and ITO/C_(60)/CuPc/Cu) and three layer cells with mixed layer inserted between CuPc and C_(60) were fabricated. We found that in all cases the short circuit current was the parameter which was most significantly affected by ITO surface treatment. However, the performance of the cells with C_(60) layer in contact with ITO was markedly less sensitive to the ITO surface treatments compared to the cells with CuPc in contact with ITO. The cells with C_(60) layer in contact with ITO also exhibited higher efficiency compared to the cells with CuPc in contact with ITO. We also fabricated two layer cells with structures ITO/CuPc/ perylene tettacarboxylic acid diimide (PTCDI)/Al and ITO/PTCDI/CuPc/Cu. In this case, we also obtain higher efficiency and lower sensitivity to ITO properties when "n type" material is in contact with ITO. The best obtained AM1 power conversion efficiency was 0.4% for ITO/PTCDI/CuPc/Cu cell and ITO/C_(60)/CuPc:C_(60)/CuPc/Cu cells.
机译:在这项工作中,我们研究了不同的铟锡氧化物(ITO)表面处理对具有不同器件架构的有机太阳能电池性能的影响。具有不同层层次的两层电池(ITO /铜酞菁(CuPc)/富勒烯(C_(60))/ Al和ITO / C_(60)/ CuPc / Cu)和三层电池,在CuPc和C_之间插入混合层60)。我们发现,在所有情况下,短路电流都是受ITO表面处理影响最大的参数。然而,与CuPc接触ITO的电池相比,C_(60)层接触ITO的电池的性能对ITO表面处理的敏感性显着降低。与具有C_(60)层与ITO接触的电池相比,具有具有CuPc的电池也具有更高的效率。我们还制造了两层结构为ITO / CuPc / t钛酸二酰亚胺(PTCDI)/ Al和ITO / PTCDI / CuPc / Cu的电池。在这种情况下,当“ n型”材料与ITO接触时,我们还将获得更高的效率和更低的ITO性能敏感性。对于ITO / PTCDI / CuPc / Cu电池和ITO / C_(60)/ CuPc:C_(60)/ CuPc / Cu电池,获得的最佳AM1功率转换效率为0.4%。

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