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Is conversion efficiency still relevant to qualify advanced multi-junction solar cells?

机译:转换效率是否仍然与符合先进的多结太阳能电池有关的相关效率?

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For better conversion of sunlight into electricity, advanced architectures of multi-junction (MJ) solar cells include increasing numbers of subcells. The Achilles' heel of these cells lies in their increased sensitivity to the spectral distribution of sunlight, which is likely to significantly alter their performance during real working operation. This study investigates the capacity of MJ solar cells comprising up to 10 subcells to accommodate a wide range of spectral characteristics of the incident radiation. A systematic study is performed, aimed at a realistic estimation of the energy output of MJ-based concentrating photovoltaic systems at characteristic locations selected to represent a large range of climatic conditions. We show that optimal MJ architectures could have between 4 and 7 subcells. Beyond seven subcells, the slight gains in peak efficiency are likely outweighed by detrimental increases in dependence on local conditions and in annual yield variability. The relevance of considering either conversion efficiency or modeled energy output as the most appropriate indicator of the cell performance, when considering advanced architectures of MJ solar cells, is also discussed. (C) 2016 John Wiley & Sons, Ltd.
机译:为了更好地将阳光转换为电力,多结(MJ)太阳能电池的先进架构包括越来越多的子单元。这些细胞的Achilles的后跟在于对阳光光谱分布的敏感性增加,这可能在真实工作操作期间显着改变它们的性能。该研究研究了MJ太阳能电池的能力,所述MJ太阳能电池包括多达10个子电池,以适应入射辐射的各种光谱特性。进行系统研究,旨在估计在选择的特征位置处的基于MJ的浓缩光伏系统的能量输出估计,以表示大范围的气候条件。我们表明最佳MJ架构可能在4到7个子单元之间。除了七个子单元之外,峰值效率的略微增益可能会因临时局部条件和年产量可变性而不利的增加。还讨论了考虑转换效率或建模能量输出的相关性,作为电池性能的最合适的指标,考虑到MJ太阳能电池的高级架构。 (c)2016 John Wiley&Sons,Ltd。

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