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Designing III-V multijunction solar cells on silicon

机译:在硅上设计III-V多结太阳能电池

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Single junction Si solar cells dominate photovoltaics but are close to their efficiency limits. This paper presents ideal limiting efficiencies for tandem and triple junction multijunction solar cells featuring a Si subcell also serving as substrate. Subject to this Si bandgap constraint, we design optimum cell structures that we show depart from the unconstrained ideal. In order to progress to manufacturable designs, the use of III-V materials is considered, using a novel growth method capable of yielding low defect density III-V layers on Si. In order to evaluate the real potential of these proposed multijunction designs, a quantitative model is presented, the strength of which is the joint modelling of external quantum efficiency and current-voltage characteristics using the same parameters. The method yields a single-parameter fit in terms of the Shockley-Read-Hall lifetime. This model is validated by fitting experimental data of external quantum efficiency, dark current and conversion efficiency of world record tandem and triple junction cells under terrestrial solar spectra without concentration. We apply this quantitative model to the design of tandem and triple junction solar cells, yielding cell designs capable of reaching efficiencies without concentration of 32% for the best tandem cell and 36% for the best triple junction cell. This demonstrates that efficiencies within a few per cent of world records are realistically achievable without the use of concentrating optics, with growth methods being developed for multijunction cells combining III-V and Si materials.
机译:单结硅太阳能电池在光伏发电中占主导地位,但已接近其效率极限。本文介绍了以Si子电池为衬底的串联和三结多结太阳能电池的理想极限效率。受此Si带隙约束的影响,我们设计了最佳单元结构,该结构显示出不受约束的理想。为了进行可制造的设计,考虑使用能够在Si上产生低缺陷密度III-V层的新型生长方法来使用III-V材料。为了评估这些提议的多结设计的实际潜力,提出了一个定量模型,其强度是使用相同参数对外部量子效率和电流-电压特性进行联合建模。根据Shockley-Read-Hall寿命,该方法可得出单参数拟合。该模型通过拟合在不集中的地面太阳光谱下外部量子效率,暗电流和世界纪录串联和三结电池的转换效率的实验数据进行验证。我们将此定量模型应用到串联和三结太阳能电池的设计中,得出的电池设计能够在没有浓度的情况下达到最佳效率(最好的串联电池为32%,最佳的三结电池为36%)。这表明在不使用聚光光学系统的情况下,实际上可以达到世界纪录百分之几的效率,并且开发了结合III-V和Si材料的多结电池的生长方法。

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