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Progress in the Development of Metamorphic Multi-junction III-V Space Solar Cells

机译:变质多结III-V空间太阳能电池的研究进展

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Theoretical calculations have shown that highest-efficiency III-V multi-junction solar cells require alloy structures that cannot be grown on a lattice-matched substrate. Ever since the first demonstration of high-efficiency metamorphic single-junction 1.1 and 1.2 eV InGaAs solar cells, interest has grown in the development of multi-junction cells of this type, using graded buffer layer technology. Essential Research Incorporated (ERI) is currently developing a dual-junction 1.6 eV InGaP/1.1 eV InGaAs tandem cell (projected practical air-mass zero (AM0), one-sun efficiency of 27 percent, and 100-sun efficiency of 31.1 percent) under a Ballistic Missile Defense Command (BMDO) SBIR Phase II program. A second ongoing research effort involves the development of a 2.1 eV AlGaInP/1.6 eV InGaAsP/1.2 eV InGaAs triple-junction concentrator tandem cell (projected practical AM0 efficiency 36.5 percent under 100 suns) under a SBIR Phase II program funded by the Air Force. We are in the process of optimizing the dual-junction cell performance. For the triple-junction cell, we have developed the bottom and the middle cell, and are in the process of developing the layer structures needed for the top cell. A progress report is presented in this paper.
机译:理论计算表明,效率最高的III-V多结太阳能电池需要的合金结构不能在晶格匹配的衬底上生长。自从首次展示高效变质单结1.1和1.2 eV InGaAs太阳能电池以来,人们就开始使用渐变缓冲层技术开发这种类型的多结电池。 Essential Research Incorporated(ERI)当前正在开发一个双结1.6 eV InGaP / 1.1 eV InGaAs串联电池(预计实际空气质量零(AM0),单太阳效率为27%,100太阳效率为31.1%)根据弹道导弹防御司令部(BMDO)SBIR第二阶段计划。正在进行的第二项研究工作涉及在空军资助的SBIR阶段II计划下开发2.1 eV AlGaInP / 1.6 eV InGaAsP / 1.2 eV InGaAs三结浓缩器串联电池(预计在100个太阳下实际AM0效率为36.5%)。我们正在优化双结电池的性能。对于三结电池,我们已经开发了底部电池和中间电池,并且正在开发顶部电池所需的层结构。本文介绍了进度报告。

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