2002Unpublished venueRequires access

AlGaAs top solar cell for mechanical attachment in a multi-junction tandem concentrator solar cell stack

L.C. DiNetta, Gerald H. Negley, M.H. Hannon, John R. Cummings, James B. McNeely, Allen Barnett

Open publisher page 6 citations

Abstract

Free-standing, transparent, tunables bandgap Al/sub x/Ga/sub 1-x/As top solar cells have been fabricated for mechanical attachment in a four-terminal tandem stack solar cell. The device has 1.8 eV top solar cells with efficiencies of 18% (100X, AM0), which would yield stack efficiencies of 31% (100X, AM0) with a silicon bottom cell. When fully developed, the Al/sub x/Ga/sub 1-x/As/Si mechanically stacked two-junction solar cell concentrator system can provide efficiencies of 36% (AM0, 100X). Liquid-phase epitaxy (LPE) growth techniques have been used. This is the first demonstration of a free-standing wide-bandgap top cell technology which can be readily developed for commercial availability based on the Al-Ga-As mixed-crystal system.>

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What this paper is about

Free-standing, transparent, tunables bandgap Al/sub x/Ga/sub 1-x/As top solar cells have been fabricated for mechanical attachment in a four-terminal tandem stack solar cell. The device has 1.8 eV top solar cells with efficiencies of 18% (100X, AM0), which would yield stack efficiencies of 31% (100X, AM0) with a silicon bottom cell. When fully developed, the Al/sub x/Ga/sub 1-x/As/Si mechanically stacked two-junction solar cell concentrator system can provide efficiencies of 36% (AM0, 100X). Liquid-phase epitaxy (LPE) growth techniques have been used. This is the first demonstration of a free-standing wide-bandgap top cell technology which can be readily developed for commercial availability based on the Al-Ga-As mixed-crystal system.>

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Available abstract

Free-standing, transparent, tunables bandgap Al/sub x/Ga/sub 1-x/As top solar cells have been fabricated for mechanical attachment in a four-terminal tandem stack solar cell. The device has 1.8 eV top solar cells with efficiencies of 18% (100X, AM0), which would yield stack efficiencies of 31% (100X, AM0) with a silicon bottom cell. When fully developed, the Al/sub x/Ga/sub 1-x/As/Si mechanically stacked two-junction solar cell concentrator system can provide efficiencies of 36% (AM0, 100X). Liquid-phase epitaxy (LPE) growth techniques have been used. This is the first demonstration of a free-standing wide-bandgap top cell technology which can be readily developed for commercial availability based on the Al-Ga-As mixed-crystal system.>

Key concepts: Stack (abstract data type), Tandem, Solar cell, Concentrator, Materials science, Optoelectronics, Band gap, Silicon

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