Multi-junction polymer solar cells: Status and challenges (Conference Presentation)

R. Janssen
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Abstract

Multi-junction device architectures represent a promising strategy to further advance the efficiency of organic solar cells. For solution-processed organic solar cells, tandem and triple junction cells have been reported in the past. Yet, several challenges remain, both in developing new photoactive materials as well crating new recombination layers that serve to interconnect the subcells. We developed new versatile charge recombination layers for solution-processed multi-junction solar cells in n-i-p and p-i-n architectures. The new recombination layers provide an essentially lossless contact in each case, without the need of adjusting the formulations or deposition conditions for six different tandem cells and three different triple-junction solar cells, employing a range of different photoactive layers. The approach permitted realizing complex devices in good yields, providing a power conversion efficiency up to 10%. We will also present a first example of a quadruple-junction polymer solar cell, featuring four different and complementary band gap absorber layers that absorb light up to 1150 nm. The quadruple junction cell is reaches a power conversion efficiency of about 7.5% with an open-circuit voltage of 2.46 V. Measuring the external quantum efficiency (EQE) of the quadruple cells has been accomplished using a protocol using bias light of different wavelengths, involving optical modeling and correcting for the build-up electric field. At present, the efficiency of the quadruple-junction polymer cell is mainly limited by bimolecular recombination in the active layers.
多结聚合物太阳能电池:现状与挑战(会议报告)
多结器件架构代表了进一步提高有机太阳能电池效率的有前途的策略。对于溶液处理的有机太阳能电池,串联和三重结电池在过去已经被报道过。然而,仍然存在一些挑战,包括开发新的光活性材料以及创建用于连接亚细胞的新重组层。我们在n-i-p和p-i-n结构中为溶液处理的多结太阳能电池开发了新的多功能电荷复合层。新的复合层在每种情况下都提供了本质上无损的接触,而不需要调整六种不同的串联电池和三种不同的三结太阳能电池的配方或沉积条件,采用一系列不同的光活性层。该方法允许以良好的产量实现复杂的器件,提供高达10%的功率转换效率。我们还将展示一个四结聚合物太阳能电池的第一个例子,具有四个不同的互补带隙吸收层,吸收高达1150nm的光。当开路电压为2.46 V时,四结电池的功率转换效率约为7.5%。利用不同波长的偏置光,包括光学建模和对累积电场的校正,完成了四重电池外量子效率(EQE)的测量。目前,四结聚合物电池的效率主要受到活性层中双分子重组的限制。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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