DocumentCode :
1202578
Title :
High-efficiency GaInP/GaAs tandem solar cells
Author :
Bertness, K.A. ; Friedman, D.J. ; Kurtz, Sarah R. ; Kibbler, A.E. ; Kramer, C. ; Olson, J.M.
Author_Institution :
Nat. Renewable Energy Lab., Golden, CO, USA
Volume :
9
Issue :
12
fYear :
1994
Firstpage :
12
Lastpage :
17
Abstract :
GaInP/GaAs tandem solar cells have achieved new record efficiencies, specifically 25.7% under air-mass 0 (AMO) illumination, 29.5% under AM 1.5 global (AM1.5G) illumination, and 30.2% at 140-180x concentration under AM 1.5 direct (AM1.5D) illumination. These values are the highest two-terminal efficiencies achieved by any solar cell under these illumination conditions. The monolithic, series-connected design of the tandem cells allows them to be substituted for silicon or gallium arsenide cells in photovoltaic panel systems with minimal design changes. The advantages of using GaInP/GaAs tandem solar cells in space and terrestrial applications are discussed primarily in terms of the reduction in balance-of-system costs that accrues when using a higher efficiency cell. The new efficiency values represent a significant improvement over previous efficiencies for this materials system, and we identify grid design, back interface passivation, and top interface passivation as the three key factors leading to this improvement. In producing the high-efficiency cells, we have addressed nondestructive diagnostics and materials growth reproducibility as well as peak cell performance.<>
Keywords :
III-V semiconductors; gallium arsenide; indium compounds; nondestructive testing; photovoltaic power systems; semiconductor device manufacture; semiconductor technology; solar cell arrays; space vehicle power plants; 25.7 percent; 29.5 percent; 30.2 percent; GaInP-GaAs; GaInP/GaAs tandem solar cells; back interface passivation; balance-of-system costs; grid design; high-efficiency cells; materials growth reproducibility; monolithic series-connected design; nondestructive diagnostics; peak cell performance; photovoltaic panel systems; space applications; terrestrial applications; top interface passivation; Costs; Gallium arsenide; Germanium; Lighting; Passivation; Photovoltaic cells; Renewable energy resources; Reproducibility of results; Silicon; Substrates;
fLanguage :
English
Journal_Title :
Aerospace and Electronic Systems Magazine, IEEE
Publisher :
ieee
ISSN :
0885-8985
Type :
jour
DOI :
10.1109/62.334755
Filename :
334755
Link To Document :
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