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Numerical simulation on high-efficiency GaInP/GaAs/InGaAs triple-junction solar cells

机译:高效GaInP / GaAs / InGaAs三结太阳能电池的数值模拟

摘要

[[abstract]]In this paper, the high-efficiency GaInP/GaAs/InGaAs triple-junction solar cells are investigated numerically by using the APSYS simulation program. The solar cell structure used as a reference was based on a published article by Geisz et al. (Appl. Phys. Lett. 91, 023502, 2007). By optimizing the layer thickness of the top and middle cells, the appropriate solar cell structure which possesses high sunlight-to-energy conversion efficiency is recommended. At AM1.5G and one sun, the conversion efficiency is improved by 2.3%. At AM0 and one sun, the conversion efficiency is improved by 4.2%. At AM1.5D and one sun, the conversion efficiency is improved by 1.3%. Furthermore, based on the optimized structures, this device can achieve efficiencies of more than 40% at high concentrations. For the triple-junction solar cell under AM1.5G solar spectrum, the conversion efficiency reaches 40.2% at 40 suns. For the device under AM0 solar spectrum, the conversion efficiency reaches 36.2% at 30 suns. For the device under AM1.5D solar spectrum, the conversion efficiency reaches 40.2% at 50 suns.
机译:[[摘要]]本文使用APSYS仿真程序对高效GaInP / GaAs / InGaAs三结太阳能电池进行了数值研究。用作参考的太阳能电池结构基于Geisz等人的已发表文章。 (Appl.Phys.Lett.91,023502,2007)。通过优化顶部和中间电池的层厚度,建议使用具有高的太阳光能转换效率的合适太阳能电池结构。在AM1.5G和1个太阳下,转换效率提高了2.3%。在AM0和1个太阳下,转换效率提高了4.2%。在AM1.5D和1个太阳下,转换效率提高了1.3%。此外,基于优化的结构,该设备在高浓度下可实现40%以上的效率。对于AM1.5G太阳光谱下的三结太阳能电池,在40个太阳下转换效率达到40.2%。对于AM0太阳光谱下的器件,在30个太阳下的转换效率达到36.2%。对于AM1.5D太阳光谱下的设备,在50个太阳下的转换效率达到40.2%。

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