DocumentCode
2774831
Title
Fast growth rate GaAs and InGaP for MOCVD grown triple junction solar cells
Author
Ebert, C. ; Parekh, A. ; Pulwin, Z. ; Zhang, W. ; Lee, D. ; Byrnes, D.
Author_Institution
MOCVD Oper., Veeco Instrum. Inc., Somerset, NJ, USA
fYear
2010
fDate
20-25 June 2010
Abstract
Triple junction solar cells (TJSC) are the highest efficiency solar cells available today and are utilized in space and concentrator photovoltaic terrestrial applications. These cells are manufactured using metalorganic chemical vapor deposition (MOCVD) in large scale commercial reactors. Since TJSC process time is largely driven by the growth of the (In)GaAs middle cell and InGaP top cell, increasing the MOCVD growth rate can reduce the process time and increase reactor throughput. In this paper, we discuss a materials characterization comparison of (In)GaAs and InGaP grown at conventional growth rate and faster growth rates. Our results show similar material characteristics of (In)GaAs grown at ~66% higher growth rate as measured by photoluminescence, X-ray, AFM surface roughness, and background doping and for InGaP grown at ~57% higher growth rate for photoluminescence and sheet resistivity uniformity. These higher growth rates incorporated into a MOCVD growth process can lead to ~20% reduction in process time and lower the cost of TJSC manufacture.
Keywords
III-V semiconductors; MOCVD; atomic force microscopy; gallium arsenide; indium compounds; photoluminescence; semiconductor growth; solar cells; solar energy concentrators; surface roughness; AFM surface roughness; GaAs; InGaP; MOCVD grown triple junction solar cells; TJSC; X-ray measurement; concentrator photovoltaic terrestrial applications; fast growth rate; large scale commercial reactors; metalorganic chemical vapor deposition; photoluminescence; sheet resistivity uniformity; space photovoltaic terrestrial applications;
fLanguage
English
Publisher
ieee
Conference_Titel
Photovoltaic Specialists Conference (PVSC), 2010 35th IEEE
Conference_Location
Honolulu, HI
ISSN
0160-8371
Print_ISBN
978-1-4244-5890-5
Type
conf
DOI
10.1109/PVSC.2010.5616555
Filename
5616555
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